Difference between revisions of "Evolution" - New World Encyclopedia

From New World Encyclopedia
 
(115 intermediate revisions by 10 users not shown)
Line 1: Line 1:
{{Contracted}}{{Status}}
+
{{2Copyedited}}{{Edboard}}{{Copyedited}}{{Paid}}{{Approved}}{{Images OK}}{{Submitted}}
Note: This is only a very rough draft, with notes that may be useful in developing the article. Please do not edit this article until the actual article is complete — i.e., when this notice is removed. You may add comments on what you would like to see included. [[User:Rick Swarts|Rick Swarts]] 00:05, 28 Sep 2005 (UTC)
 
  
 
+
{{dablink|This article is about evolution in the field of biology.}}
{{dablink|This article is about evolution in the field of life science, for other uses please see [[Evolution (disambiguation)]].}}
 
 
[[Image:Charles Darwin.jpg|thumb|150px|[[Charles Darwin]], father of the theory of evolution by [[natural selection]].]]
 
[[Image:Charles Darwin.jpg|thumb|150px|[[Charles Darwin]], father of the theory of evolution by [[natural selection]].]]
  
[[image:Alfred Russel Wallace.jpg|thumb|150px|Alfred Russel Wallace]]
+
Broadly defined, biological '''evolution''' is any heritable change in a population of [[organism]]s over time. Changes may be slight or large, but must be passed on to the next generation (or many generations) and must involve populations, not individuals.
  
 +
Similarly, the term may be presented in terms of [[allele]] frequency (with an "allele" being an alternative form of a [[gene]], such as different alleles code for different eye colors): "Evolution can be precisely defined as any change in the frequency of alleles within a gene pool from one generation to the next" (Curtis & Barnes 1989). Both a slight change (as in pesticide resistance in a strain of [[bacteria]]) and a large change (as in the development of major new designs such as feathered wings, or even the present diversity of life from simple [[prokaryote]]s) qualify as evolution.
  
In the most general sense, '''evolution''' in biology simply refers to hertiable changes in populations of organisms over time. These changes may be slight or large, but must be passed on to the next generation (or many generations) and must involve populations not individuals. Douglas J. Futuyama in ''Evolutionary Biology'' (1986) stated: "Biological evolution ... is change in the properties of populations of organisms that transcend the lifetime of a single individuals. ... The changes in populations that are considered evolutionary ae those that are inheritable via the genetic material from one generation to another." Another similar, and common, definition is "evolution can be precisely defined as any change in the frequency of alleles within a gene pool from one generation to the next." (Curtis & Barnes, 1989). In other words, there is a change in the frequency of genes in a population over time. This could be as simple as pesticide resistance in a species of bacteria or the development of major new designs such as feathered wings for flying, or even the present diversity of life from simple prokaryotes.  
+
However, "evolution" commonly is used more narrowly to refer to the specific theory that all organisms have descended from common ancestors, also known as the "theory of descent with modification," or to refer to one explanation for the process by which change occurs, the "theory of modification through [[natural selection]]." The term also is used with reference to a comprehensive theory that includes both the non-causal pattern of descent with modification and the causal mechanism of natural selection.  
  
However, the term evolution often used with more specific meanings. It is not uncommon to see evolution defined as the theory that all organisms have descended from common ancestors (which is also known as the "theory of descent with modification"). That is, it is used to refer to the pattern of evolution. Sometimes it is also used to refer to one explantion offered for the "process" by which evolution took place and arrived at the pattern, the "theory of modification through natural selection." Or, the term evolution may be used with reference to both the pattern and the theory of natural selection together.
+
Evolution is a central concept in [[biology]]. Geneticist [[Theodosius Dobzhansky|T. Dobzhansky]] (1973) has stated, "Nothing in biology makes sense, except in the light of evolution," and biologist [[Ernst Mayr]] (2001) has stated, "Evolution is the most profound and powerful idea to have been conceived in the last two centuries."
  
The concept of evolution has often engendered controversy, particularly from religious leaders. In reality, there is a wide variety of religious viewpoints with respect to evolution: from the specific doctrine of "scientific [[creationism]]," which stands in opposition to evolution, to views which accept the pattern observed in creation but not the process, to views which attribute a primacy to natural selection. Sometimes conflicts can be traced to terminological confusion, with some using the term to refer to simply a systematic change in populations over time and other using the term synonymous with the specific theory of evolution by natural selection. Furthermore, popular writings often tend to create an artificial dichotmy — either belief in a Creator is correct or evolution is correct —an "either-or dichotomy" that tends to foster an erroneous view of the relationship between evolution and religion. Most controversial is the theory of natural selection, in that it goes presents three concepts that go against most religious concepts: (1) purposelessness (no higher purpose); (2) philosophical materialism; and (3) ***** (See Evolution and Religion, below).
+
Nonetheless, the concepts of evolution have often engendered controversy during the past two centuries, particularly from Christians, whose traditional views have been challenged both by the long time period of evolution and by the purposeless, materialistic mechanism inherent in having natural selection be the creative force. Modern Christian viewpoints range from rejecting both descent with modification (the pattern) and the mechanism of natural selection (the process), to accepting descent with modification but not the theory of natural selection, to those claiming natural selection as God's way of creating things. (See [[Evolution#Evolution_and_religion|evolution and religion]] below.)
 +
{{toc}}
 +
The development of modern theories of evolution began with the introduction of the concept of [[natural selection]] in a joint 1858 paper by [[Charles Darwin]] and [[Alfred Russel Wallace]], and the publication of Darwin's 1859 book, ''The Origin of Species.'' Darwin and Wallace proposed that evolution occurs because a heritable trait that increases an individual's chance of successfully reproducing will become more common, by inheritance, from one generation to the next, and likewise a heritable trait that decreases an individual's chance of reproducing will become rarer. In the 1930s, scientists combined Darwinian natural selection with the re-discovered theory of [[Gregor Mendel|Mendelian]] [[heredity]] to create the [[modern synthesis]], which is the prevailing paradigm of evolutionary theory.
  
The development of the modern theory of evolution began with the introduction of the concept of [[natural selection]] in a joint 1858 paper by [[Charles Darwin]] and [[Alfred Russel Wallace]]. This theory achieved a wider readership in Darwin's 1859 book, ''[[The Origin of Species]]''. Darwin and Wallace proposed that evolution occurs because a heritable trait that increases an individual's chance of successfully reproducing will become more common, by inheritance, from one generation to the next, and likewise a heritable trait that decreases an individual's chance of reproducing will become rarer. This work was groundbreaking, and overturned other evolutionary theories, such as that advanced by [[Jean Baptiste Lamarck]]. Because of its potential implications for the origins of humankind, the theory has been at the center of many social and religious controversies since its first inception (see [[Creation-evolution controversy]]).
+
==Evolutionary theory==
  
In the 1930s, scientists combined Darwinian natural selection with the re-discovered theory of [[Gregor Mendel|Mendelian]] [[heredity]] to create the [[modern synthesis]], now one of the fundamental [[Theory#Science|scientific theories]] of biology. In the modern synthesis, "evolution" is defined as a change in the frequency of [[allele]]s within a population from one generation to the next. The basic mechanisms that produce these changes are [[natural selection]], [[genetic drift]],  and [[genetic variation]]. The primary sources of [[genetic variation]] are [[mutation]], [[sex]], and [[gene flow]].{{ref|mechanismsofchange}}
+
As broadly and commonly defined in the scientific community, the term evolution connotes heritable changes in populations of organisms over time, or changes in the frequencies of alleles over time. A popular definition along these lines is that offered by Douglas J. Futuyma (1986) in ''Evolutionary Biology:'' "Biological evolution…is change in the properties of populations of organisms that transcend the lifetime of a single individual…. The changes in populations that are considered evolutionary are those that are inheritable via the genetic material from one generation to another." In this sense, the term does not specify any overall pattern of change through the ages, nor the process whereby change occurs (although the term is also employed in such a manner).  
  
 +
However, there are two very important and popular evolutionary theories that address the pattern and process of evolution: "theory of descent with modification" and "theory of natural selection," respectively, as well as other concepts in evolutionary theory that deal with speciation and the rate of evolution.
  
==Overview of evolution==
+
===Theory of descent with modification===
  
===Components of evolutionary theory===
+
The "theory of descent with modification" is the major kinematic theory that deals with the pattern of evolution—that is, it treats non-causal relations between ancestral and descendant [[species]], orders, phyla, and so forth. The theory of descent with modification, also called the "theory of common descent," essentially postulates that all organisms have descended from common ancestors by a continuous process of branching. In other words, narrowly defined, all life evolved from one kind of [[organism]] or from a few simple kinds, and each species arose in a single geographic location from another species that preceded it in time. Each group of organisms shares a common ancestor. In the broadest sense of the terminology, the theory of descent with modification simply states that more recent forms result from modification of earlier forms.
  
Overview on components of evolutionary theory
+
One of the major contributions of [[Charles Darwin]] was to marshal substantial evidence for the theory of descent with modification, particularly in his book, ''Origin of Species.'' Among the evidences that evolutionists use to document the "pattern of evolution" are the fossil record, the distribution patterns of existing species, methods of dating fossils, and comparison of homologous structures. (See [[Evolution#Evidences_of_evolution|evidences of evolution]] below.)
  
1.  Components of evolutionary theory
+
===Theory of natural selection===
  
In Darwin's comprehensive theory of evolution, there can actually be elucidated at least five major, largely independent theories.  The two basic theories, and the ones which I will treat here, are: (1) the theory of evolution by common descent, and (2) the theory of modification through natural selection. The first is a  kinematic theory which deals with non-causal relations between things — it deals with the pattern of evolution.  The latter is a dynamic theory which deals with mechanisms and causal relationships B it deals with the  process. Other theories offered by Darwin deal with (3) evolution as such (the fact of evolution), (4) the gradualness of evolution, and (5) populational speciation.
+
''Main articles:'' [[Darwinism]] and [[Natural selection]]
  
 +
The second major evolutionary theory is the "theory of modification through natural selection," also known as the "theory of natural selection." This is a dynamic theory that involves mechanisms and causal relationships. The theory of natural selection is one explanation offered for how evolution might have occurred; in other words, the "process" by which evolution took place to arrive at the pattern.
  
 +
The term '''natural selection''' may be defined as the mechanism whereby biological individuals that are endowed with favorable or deleterious traits reproduce more or less than other individuals that do not possess such traits. Natural selection generally is defined independently of whether or not there is actually an effect on the [[gene]]-frequency of a population. That is, it is limited to the selection process itself, whereby individuals in a population experience differential survival and reproduction based on a particular [[phenotype|phenotypic]] variation(s).
  
 +
The '''theory of evolution by natural selection''' is the comprehensive proposal involving both heritable genetic variations in a population and the mechanism of natural selection that acts on these variations, such that individuals with greater fitness are more likely to contribute offspring to the next generation, while individuals with lesser fitness are more likely to die early or fail to reproduce. As a result, genotypes with greater fitness become more abundant in the next generation, while genotypes with a lesser fitness become rarer. This theory encompasses both minor changes in gene frequency in populations, brought about by the creative force of natural selection, and major evolutionary changes brought about through natural selection, such as the origin of new designs. For Darwin, however, the term ''natural selection'' generally was used synonymously with ''evolution by natural selection.''
  
 +
In the theory of natural selection as currently conceived, there is both a chance component and a non-random component. Genetic variation is seen as developing randomly, by chance, such as through [[mutation]]s or [[genetic recombination]]. Mayr (2002) states that the production of genetic variation "is almost exclusively a chance phenomena." In every generation, new mutations and recombinations arise spontaneously, producing a new spectrum of phenotypes for natural selection—a non-random selective force (Mayr 2002)—to act upon. However, Mayr (2002) also notes that chance plays an important role even in "the process of the elimination of less fit individuals," and particularly during periods of [[mass extinction]]. Thus, chance (stochastic processes, randomness) also plays a major role in the theory of natural selection.
  
 +
According to the theory of natural selection, natural selection is the ''directing or creative force'' of evolution. Natural selection is considered far more than just a minor force for weeding out unfit organisms. Even [[William Paley|Paley]] and other natural theologians accepted natural selection, albeit as a mechanism for removing unfit organisms, rather than as a directive force for creating new species and new designs.
  
====Theory of descent with modification====
+
Concrete evidence for the theory of modification by natural selection is limited to [[microevolution]]—that is, evolution at or below the level of species. The evidence that natural selection directs changes on the [[macroevolution|macroevolutionary]] level—such as the major transitions between higher taxa and the origination of new designs—necessarily involves extrapolation from these evidences on the microevolutionary level. The validity of making such extrapolations has recently been challenged by some prominent evolutionists.
  
The "theory of descent with modification" essentially postulates that all organisms have descended from common ancestors by a continuous process of branching. In other words, all life evolved from one kind of organism or from a few simple kinds, and each species arose in a single geographic location, from another species that preceded it in time.  Evolutionists have marshaled substantial evidence for the theory of descent with modification. That is, the "pattern of evolution" is well documented by the fossil record, the distribution patterns of existing species, methods of dating fossils, and comparison of homologous structures. Interestingly, all of the classical arguments for evolution are fundamentally arguments for imperfections that reflect history. They fit the pattern of observing that the leg of Reptile B is not the best for walking, because it evolved from Fish A.  In other words, why would a rat run, a bat fly, a porpoise swim and a man type all with the same structures utilizing the same bones unless inherited from a common ancestor? 
+
The theory of natural selection received a much more contentious response than did the theory of descent with modification. One of Darwin's chief purposes in publishing the ''Origin of Species'' was to show that natural selection had been the chief agent of the changes presented in the theory of descent with modification. While the theory of descent with modification was accepted by the scientific community soon after its introduction, the theory of natural selection took until the mid-1900s to be accepted. However, even today, this theory remains controversial, with detractors in both the scientific and religious communities.
  
+
===Speciation and extinction===
Evidence is so overwhelming for the theory of descent with modification that only religious fundamentalists have attempted to challenge this theory.  Among these are the Ascientific creationists.@  Scientific creationists@ are a specific group of creationists who maintain that modern organisms did not descend from common ancestors, and that their only historical connectedness is in the mind of God. Instead, scientific creationists promulgate the view that living organisms are immutable, and were all created by God in a short time period, on a earth whose age is generally measured in 1000s of years.  The substantial fossil record is dismissed in various ways, including as a trick of God and as an artifact from the Great Flood (with some organisms sinking faster than others and thus on a lower fossil plane). Although some individual presentations by scientific creationists are quite sophisticated, the overall theory of scientific creationism runs counter to an enormous body of evidence and thus is strongly criticized by most of the scientific community.
+
''Main articles:'' [[Speciation]] and [[Species]]
  
 +
The concepts of speciation and [[extinction]] are important to any understanding of evolutionary theory.
  
 +
Speciation is the term that refers to creation of new and distinct biological [[species]] by branching off from the ancestral population. Various mechanisms have been presented whereby a single evolutionary lineage splits into two or more genetically independent lineages. For example, [[allopatric speciation]] is held to occur in populations that become isolated geographically, such as by habitat fragmentation or migration. [[Sympatric speciation]] is held to occur when new species emerge in the same geographic area. [[Ernst Mayr]]'s peripatric speciation is a proposal for a type of speciation that exists in between the extremes of allopatry and sympatry, where zones of differentiating species abut but do not overlap.
  
 
 
====Theory of natural selection====
 
 
The second theory of Darwin, the "theory of modification through natural selection," is one explanation offered for how evolution might have occurred, i.e, the "process" by which evolution took place and arrived at the pattern.  This theory of natural selection was the most revolutionary and controversial concept advanced by Darwin.  While the theory of descent with modification was accepted soon after its introduction, the theory of natural selection took until the mid-1900s to be accepted by the scientific community.  By providing a purely non-teleogical, materialistic explanation for all phenomenon of living nature, it was said it "dethroned God." 
 
 
According to this theory, natural selection is the directing or creative force of evolution.  Natural selection is considered far more than just a minor force for weeding out unfit organisms.  Even Paley and other natural theologians accepted natural selection, albeit as a devise for removing unfit organisms, rather than as a directive force for creating new species and new designs. Natural selection had three radical components— (a) purposelessness (no higher purpose, just the struggle of individuals to survive and reproduce); (b) philosophical materialism (matter is seen as the ground of all existence with spirit and mind being produced by or a function of the material brain); and (c) the view that evolution is not progressive from lower to higher, but just an adaptation to local environments; it could form a man with his superior brain or a parasite, but no one could say which is higher or lower.
 
 
Concrete evidence for the theory of modification by natural selection is limited to microevolution, such as seen in the systematic color change in the peppered moth, Biston  betularia which was observed over a 50-year period in England, or through artificial selection, whereby various breeds of animals and varieties of plants have been produced which are different in some respect from their ancestors.  The evidence that natural selection directs the major transitions between species and originates new designs (macroevolution) necessarily involves extrapolation from these evidences on the microevolutionary level.  That is, it is inferred that if moths can change their color in 50 years, then new designs or entire new genera can originate over millions of years.  If geneticists see population changes for fruit flies in laboratory bottles, then given eons of time, birds can be built from reptiles and fish with jaws from jawless ancestors.  One of Darwin's chief purposes in publishing the Origin of Species was to show that natural selection had been the chief agent of the change presented in the theory of descent with modification. The validity of making this extrapolation has recently come under strong challenge from top evolutionists.
 
 
 
====Speciation====
 
Speciation and extinction
 
 
[[Image:800px-Allosaurus1.jpg|right|thumb|250px|An [[allosaurus]] skeleton.]]
 
[[Image:800px-Allosaurus1.jpg|right|thumb|250px|An [[allosaurus]] skeleton.]]
[[Speciation]] is the creation of two or more species from one. This may take place by various mechanisms. [[Allopatric speciation]] occurs in populations that become isolated geographically, such as by [[habitat fragmentation]] or migration. [[Sympatric speciation]] occurs when new species emerge in the same geographic area. [[Ernst Mayr]]'s [[peripatric speciation]] is a type of speciation that exists in between the extremes of allopatry and sympatry. Peripatric speciation is a critical underpinning of the theory of [[punctuated equilibrium]].
 
  
[[Extinction]] is the disappearance of species (i.e. [[gene pool]]s). The moment of extinction generally occurs at the death of the last individual of that species. Extinction is not an unusual event in [[geological time]] — species are created by speciation, and disappear through extinction. The [[Permian-Triassic extinction event]] was the Earth's most severe extinction event, rendering extinct 90% of all marine species and 70% of terrestrial vertebrate species. In the [[Cretaceous-Tertiary extinction event]] many forms of life perished (including approximately 50% of all [[genus|genera]]), the most often mentioned among them being the extinction of the non-[[avian]] [[dinosaur]]s (See Image 5).
+
[[Extinction]] is the disappearance of species (i.e. [[gene pool]]s). The moment of extinction generally occurs at the death of the last individual of that species. Extinction is not an unusual event in [[geological time]]. The [[Permian-Triassic extinction event]] was the Earth's most severe extinction event, rendering extinct 90 percent of all marine species and 70 percent of terrestrial vertebrate species. In the [[Cretaceous-Tertiary extinction event]], many forms of life perished (including approximately 50 percent of all [[genus|genera]]), the most often mentioned among them being the extinction of the [[dinosaur]]s.  
{{-}}
 
  
 +
One of the unheralded laws of evolutionary theory is that macroevolutionary changes are irreversible—lineages do not return to their ancestral form, even when they return to the ancestral way of life.
  
 +
===Rate of evolution===
  
 +
''Main article:'' [[Punctuated equilibrium]]
  
====Rate of evolution====
+
The concept of gradualism has often been linked with evolutionary thought. Gradualism is a view of descent with modification as proceeding by means of slow accumulation of very small changes, with the evolving population passing through all the intermediate stages—sort of a "march of frequency distributions" through time (Luria, Gould, and Singer 1981).
  
3. Punctuational Models
+
Darwin himself insisted that evolution was entirely gradual. Indeed, he stated in the ''Origin of Species:''
 +
*"As natural selection acts solely by accumulating slight, successive, favourable variations, it can produce no great or sudden modifications; it can act only by very short and slow steps."
 +
*Nature "can never take a leap, but must advance by the shortest and slowest steps."
 +
*"If it could be demonstrated that any complex organ existed, which could not possibly have been formed by numerous, successive, slight modifications, my theory would absolutely break down."
  
Recent evolutionary theories have actually drawn creationists and evolutionists closer. Among the chief of these are the various punctuational models.
+
The Darwinian and Neo-Darwinian emphasis on gradualism has been subject to re-examination on several levels: the levels of major evolutionary trends, origin of new designs, and models of speciation.
  
Historically, the view of gradualism dominated. Gradulism is a view of evolution as proceeding by means of slow accumulation of very small changes, with the evolving population passing through all the intermediate stages B sort of a "march of frequency distributions" through time. This Darwinian and Neo-Darwinian emphasis on gradualism has been subject to re-examination on several levels B  the levels of speciation, origin of new designs, and major evolutionary trends.
+
'''Punctuated equilibrium.''' A common misconception about evolution is that the development of new species generally requires millions of years. Indeed, the gradualist view that speciation involved a slow, steady, progressive transformation of an ancestral population into a new species has dominated much of evolutionary thought from the time of Darwin. Such a transformation was commonly viewed as involving large numbers of individuals ("usually the entire ancestral population"), being "even and slow," and occurring "over all or a large part of the ancestral species' geographic range" (Eldredge & Gould 1972). This concept was applied to the development of a new species by either phyletic evolution (where the descendant species arises by the transformation of the entire ancestral population) or by speciation (where the descendant species branches off from the ancestral population).  
  
 +
However, paleontologists now recognize that the fossil record does not generally yield the expected sequence of slightly altered intermediary forms, but instead the sudden appearance of [[species]], and long periods when species do not change much.
  
3aPunctuational speciation
+
The theory of [[punctuated equilibrium]] ascribes that the fossil record accurately reflects evolutionary change. That is, it posits that macroevolutionary patterns of species are typically ones of morphological stability during their existence (stasis), and that most evolutionary change is concentrated in events of speciation—with the origin of a new species usually occurring during geologically short periods of time when the long-term stasis of a population is punctuated by this rare and rapid speciation event. The sudden transitions between species are sometimes measured on the order of hundreds or thousands of years relative to their millions of years of existence. Although the theory of punctuated equilibrium originally generated a lot of controversy, it is now viewed highly favorably in the scientific community, and has even become a part of recent textbook orthodoxy.
 +
   
 +
Note that the theory of punctuated equilibrium merely addresses the pattern of evolution and is not tied to any one mode of speciation. Although occurring in a brief period of time, the species formation can go through all the stages, or can proceed by leaps. It is even neutral with respect to natural selection.
  
A common misconception about evolution is that the development of new species requires millions of years.
+
'''Punctuated origin of new designs.''' According to the gradualist viewpoint, the origin of novel features, such as [[feather]]s in [[bird]]s and [[jaw]]s in [[fish]], can be explained as having arisen from numerous, tiny, imperceptible steps, with each step being advantageous and developed by [[natural selection]]. Darwin's proposed such a resolution for the origin of the vertebrate eye.  
  
Indeed, the gradualist view that speciation involved a slow, steady, progressive transformation of an ancestral population into a new species has dominated much of evolutionary thought from the time of Darwin. Such a transformation was generally viewed as involving large numbers of individuals, being even and slow, and occurring over all or a large part of the ancestral species geographic range.  The absence of a gradually graded sequence of intermediary forms in the fossil record was attributed to the imperfection of the geological record.
+
However, there are some structures for which it is difficult to conceive how such structures could be useful in incipient stages, and thus have selective advantage. One way in which evolutionary theory has dealt with such criticisms is the concept of "preadaptation," proposing that the intermediate stage may perform useful functions different from the final stage. Incipient feathers may have been used for retaining body warmth or catching insects, for example, prior to the development of a fully functional wing.  
  
However, the fossil record is considerably more complete than it was at the time of Darwin, and it still yields the same two points: (1) the sudden appearance of species; and (2) long periods where species do not change much. Indeed, the principle feature of individual species within the fossil record is that they do not change.  Species first appear in the fossil record looking much the same as when they disappear.  One observes a sudden appearance of fully formed species in the geological record.
+
Another solution for origin of new designs, which is gaining renewed attention among evolutionists, is that the full sequence of intermediate forms may not have existed at all, and instead key features may have developed by rapid transitions, discontinuously. This view of a punctuational origin of key features arose because of: (1) the persistent problem of the lack of fossil evidence for intermediate stages between major designs, with transitions between major groups being characteristically abrupt; and (2) the inability to conceive of functional intermediates in select cases. In the later case, prominent evolutionist [[Stephen Jay Gould]] (1980b) cites the fur-lined pouches of pocket gophers and the maxillary bone of the upper jaw of certain genera of boid snakes being split into front and rear halves:
 +
"How can a jawbone be half broken?… What good is an incipient groove or furrow on the outside? Did such hypothetical ancestors run about three-legged while holding a few scraps of food in an imperfect crease with their fourth leg?"
  
The theory of punctuated equilibria ascribes that the fossil record accurately reflects evolutionary change. That is, it posits that macroevolutionary patterns of species are typically ones of morphological stability during their existence, and that most evolutionary change is concentrated in events of speciation— with the origin of a new species usually occurring during geologically short periods of time when the long-term stasis of a population is punctuated by this rare and rapid event of speciation. The sudden transitions between species are sometimes measured on the order of 100s or 1000s of years relative to their millions of years of existence. Although the theory of punctuated equilibria originally generated a lot of controversy, it is now viewed highly favorably in the scientific community, and has even become a part of recent textbook orthodoxy.
+
The concept of punctuational origin is not necessarily opposed to natural selection as the creative force. For example, the rapid transition could be the product of a very small genetic change, even one [[mutation]] occurring by chance in a key [[gene]], which is then acted upon by natural selection. However, the concept of a punctuational origin of new designs (as with punctuational equilibrium), is also viewed favorably by those advocating divine creation, due to the alignment of this view with the concept of discontinuous variation being the product of divine input, with natural selection simply the weeding out of previous, less well-adapted forms.
 
The theory of punctuated equilibria has been embraced by many scientific creationists as evidence that the fossil record does not support Darwinian theory.  However, the founders and supporters of punctuated equilibria emphasize their view that the pattern of punctuated equilibria (stasis and rapid evolution) is the natural expectation from the now-generally accepted scientific model for speciation, involving evolution within peripherally-isolated local populations.
 
  
What can be emphasized is that punctuated equilibria merely addresses the pattern of evolution and is not tied to any one mode of speciation. Although occurring in a brief period of time, the species formation can go through all the stages, or can proceed by leaps.   It is even agnostic with respect to natural selection.   However, this theory has brought into acceptability a theistic view previously disparaged, that the fossil record supports the relatively sudden appearance of a species, and its morphological stability during its existence. Those who believe in a creator Supreme Being can posit that it is God who directs the sudden changes.
+
'''Punctuational models of speciation.''' Punctuational models of speciation are being advanced in contrast with what is sometimes labeled the "allopatric orthodoxy" (Gould 1980a; Gould and Eldredge 1977). Allopatric orthodoxy is a process of species origin involving geographic isolation, whereby a population completely separates geographically from a large parental population and develops gradually into a new species by natural selection until their differences are so great that reproductive isolation ensues. Reproductive isolation is therefore a secondary byproduct of geographic isolation, with the process involving gradual allelic substitution. Contrasted with this view are recent punctuational models for speciation, which postulate that reproductive isolation can rise rapidly, not through gradual selection, but without selective significance. In such models, reproductive isolation originates before adaptive, phenotypic differences are acquired. Selection does not play a creative role in initiating speciation, nor in the definitive aspect of reproductive isolation, although it is usually postulated as the important factor in building subsequent adaptation. One example of this is [[polyploidy]], where there is a multiplication of the number of chromosomes beyond the normal diploid number. Another model is chromosomal speciation, involving large changes in chromosomes due to various genetic accidents.
  
I am not aware of the Unification Thought view on such an evolutionary trend.  However, in the late 1970s, I did note in one of the writings of Dr. Sang Han Lee the assertion that the teachings of Rev. Moon on evolution lead to the prediction that evolutionary change would have to be step-wise.  That is, if the fossil record were complete, it would have to show that each species remains virtually the same throughout its existence, and then there would be a sudden change or splitting to create a new species from the existing species.  At the time, this presentation on evolutionary theory ran counter with the overwhelming, prevailing orthodoxy of evolutionary theory. However, this view is near identical with this new orthodoxy of punctuated equilibria.
+
==Darwinism and Neo-Darwinism==
 +
''Main articles:'' [[Darwinism]] and [[Neo-Darwinism]]
  
 +
Darwinism is a term generally synonymous with the theory of natural selection. Harvard evolutionist [[Stephen Jay Gould]] (1982) maintains: "Although 'Darwinism' has often been equated with evolution itself in popular literature, the term should be restricted to the body of thought allied with Darwin's own theory of mechanism [natural selection].” Although the term has been used in various ways depending on who is using it and the time period (Mayr 1991), Gould nonetheless finds a general agreement in the scientific community that "Darwinism should be restricted to the world view encompassed by the theory of natural selection itself."
  
3b.   Punctuated origin of new designs
+
The term neo-Darwinism is a very different concept. It is considered synonymous with the term "[[modern synthesis]]" or "modern evolutionary synthesis." The modern synthesis is the most significant, overall development in evolutionary thought since the time of Darwin, and is the prevailing paradigm of evolutionary biology. The modern synthesis melded the two major theories of classical Darwinism (theory of descent with modification and the theory of natural selection) with the rediscovered Mendelian genetics, recasting Darwin's ideas in terms of changes in allele frequency.
  
There is also the issue of the origin of new designs Bsuch as the vertebrate eye, feathers, or jaws in fishes. Such issues have often been used by critics to counter Darwinian theory. To most observers, the development of such sophisticated new designs via such a random process as natural selection seems inconceivable.  However, evolutionary theory has dealt with such criticisms since the time of Darwin, offering three basic scenarios for how natural selection crafted such new designs.  
+
In essence, advances in [[genetics]] pioneered by [[Gregor Mendel]] led to a sophisticated concept of the basis of variation and the mechanisms of inheritance. Gregor Mendel proposed a gene-based theory of inheritance, describing the elements responsible for heritable traits as the fundamental units now called genes and laying out a mathematical framework for the segregation and inheritance of variants of a gene, which are now referred to as alleles. Later research identified the molecule [[DNA]] as the genetic material through which traits are passed from parent to offspring, and identified genes as discrete elements within DNA. Though largely maintained within organisms, DNA is both variable across individuals and subject to a process of change or [[mutation]].
  
Complicated new designs have historically been explained as developing very gradually, involving numerous, tiny, imperceptible steps, with each step being advantageous and developed by natural selection.  This style of argument follows Darwin's famous resolution proposed for the origin of the vertebrate eye.
+
According to the modern synthesis, the ultimate source of all genetic variation is mutations. They are permanent, transmissible changes to the [[genetic material]] (usually [[DNA]] or [[RNA]]) of a [[cell (biology)|cell]], and can be caused by "copying errors" in the genetic material during cell division and by exposure to [[radiation]], chemicals, or [[virus|viruses]].  
  
+
In addition to passing genetic material from parent to offspring, nearly all organisms employ sexual reproduction to exchange genetic material. This, combined with [[meiosis|meiotic]] [[recombination]], allows genetic variation to be propagated through an interbreeding population.
The origin of many other features are not as easily explained along the lines postulated for the vertebrate eye.  For example, Darwin's most cogent critic, St. George Mivart, argued that Darwinism must fail because it cannot explain "the incipient stages of useful structures" B  those structures which become useful only when they are fully formed.  For example, bird feathers evolved from reptilian scales. If they are for flight, what possible benefit could they have conferred in their early stages?  A scale transformed 5% of the way into a feather would be useless in flight; so, how could such an "incipient stage" arise by natural selection?  What about the jaws of fishes?  What good is half a jaw?
 
  
For such origins as feathers and jaws, this thorny issue is generally resolved by evolutionists using the principle of preadaptation, a gradualist approach. Preadaptation holds that intermediate stages in the development of major evolutionary novelties often perform functions different from those of final stages. By such explanations, a gradual transition can be proposed for structures which cannot function in a certain way until they are fully formed.  In other words, various structures functioned in one role for ancestors, but by good fortune prove well suited after transformation to perform a very different role for descendants.  Thus, feathers may have served originally for heat regulation or catching prey, and only late in development were converted to usage in flight.  Likewise, the bony support for jaws may have originally served as a gill arch.  
+
According to the modern synthesis, natural selection acts on the genes, through their expression (phenotypes). Natural selection can be subdivided into two categories:
 +
* [[Ecological selection]] occurs when organisms that survive and reproduce increase the frequency of their genes in the gene pool over those that do not survive.
 +
* [[Sexual selection]] occurs when organisms that are more attractive to the opposite sex because of their features reproduce more and thus increase the frequency of those features in the gene pool.
  
However, another solution for origin of new designs, which is gaining renewed attention among evolutionists, is that the full sequence of intermediate forms need not have existed at all, and instead some major novelties may have arisen rapidly, discontinuously.  This in not to suggest that the first complete bird hatched from a fully reptilian egg or that a jawed fish arose all at once, fully formed. However, this view does question, in the evolution of the jaw, for example, whether one can really believe that the front set of gill arch bones lost their connection to the gills and migrated slowly forward, a fraction of a millimeter per generation, until they surrounded the mouth and took on their new function.  Instead, it questions, is it not more likely that a genetic change resulted in the transition as a kind of switch:  the bones are either back as gill supports or forward as mouth support?
+
Through the process of natural selection, species become better [[Adaptation|adapted]] to their environments. Note that, whereas mutations (and [[genetic drift]]) are random, natural selection is not, as it preferentially selects for different mutations based on differential fitness.
  
This view of a punctuational origin of key features arose because of: (1) the persistent problem of the lack of fossil evidence for intermediate stages between major designs, with transitions between major groups being characteristically abrupt; and (2) the inability, even in one's imagination, to even construct functional intermediates in many cases. Prominent evolutionist Stephen Jay Gould, for example, cites the fur-lined pouches of pocket gophers and the maxillary bone of the upper jaw of certain genera of boid snakes being split into front and rear halves:
+
In recent years, there have been many challenges to the modern synthesis, to the point where Bowler (1988), a historian of evolutionary thought, states; "In the last decade or so it has become obvious that there is no longer a universal consensus in favor of the synthetic theory even within the ranks of working biologists." Gould (1980a) likewise notes "that theory, as a general proposition is effectively dead." These challenges include models of punctuational change, the theory of “neutralism,” and selection at levels above the individual. What some historians and philosophers of evolutionary thought see as challenges to the modern synthesis, others see as either erroneous theories or as theories that can be included within the umbrella of the modern synthesis.
  
How can a jawbone be half broken? . . .  What good is an incipient groove or furrow on the outside? Did such hypothetical ancestors run about three-legged while holding a few scraps of food in an imperfect crease with their fourth leg?
+
==Evidences of evolution==
 +
''Main article:'' [[Evidence of evolution]]
  
 +
For the broad concept of evolution ("any heritable change in a population of organisms over time"), evidences of evolution are readily apparent. Evidences include observed changes in domestic crops (creating a variety of corn with greater resistance to disease), bacterial strains (development of strains with resistance to antibiotics), laboratory animals (structural changes in fruit flies), and flora and fauna in the wild (color change in particular populations of peppered moths and polyploidy in plants).
  
 +
Generally, however, the "evidences of evolution" being presented by scientists or textbook authors are for either (1) the theory of descent with modification; or (2) a comprehensive concept including both the theory of descent with modification and the theory of natural selection. In actuality, most of these evidences that have been catalogued are for the theory of descent with modification.
 
   
 
   
The recent support among prominent evolutionists for the origin of major designs via rapid transitions aids theistic critiques countering gradual, natural selection as the creative force in evolution.  For one, such a punctuational model recognizes the lack of intermediates in the fossil record and advances the difficulty of even imagining such intermediates.  It also posits a scenario whereby natural selection could be seen as having only a secondary role — eliminating unfit organisms — rather than the main creative role.  For such reasons, several prominent evolutionists have denounced the view of punctuational origins, and labeled such views non-Darwinian. 
+
===Evidences for the Theory of Descent with Modification===
  
Indeed, Darwin himself had stated, immediately after his discussion of the evolution of the eye:  "If it could be demonstrated that any complex organ existed, which could not possibly have been formed by numerous, successive, slight modifications, my theory would absolutely break down.
+
In the ''Origin of Species,'' Darwin marshaled many evidences for the theory of descent with modification, within such areas as paleontology, biogeography, morphology, and embryology. Many of these areas continue to provide the most convincing proofs of descent with modification even today (Mayr 1982; Mayr 2001). Supplementing these areas, are molecular evidences.
  
It should be noted, however, that the main proponents of punctuational origin are ardent evolutionists, who consider this theory to be within the Darwinian framework and, indeed, are careful to present the theory in a manner that supports the primacy of natural selection in evolution.
+
It is noteworthy that some of the best support for the theory of descent with modification comes from the observation of imperfections of nature, rather than perfect adaptations. As noted by Gould (1983):
 +
<blockquote>All of the classical arguments for evolution are fundamentally arguments for imperfections that reflect history. They fit the pattern of observing that the leg of Reptile B is not the best for walking, because it evolved from Fish A. In other words, why would a rat run, a bat fly, a porpoise swim and a man type all with the same structures utilizing the same bones unless inherited from a common ancestor?</blockquote>
  
 +
====Fossil record====
  
 +
[[Fossil]] evidence of prehistoric organisms has been found all over the Earth. Fossils are traces of once living organisms. Fossilization on an organism is an uncommon occurrence, usually requiring hard parts (like bone) and death where [[sediment]]s or volcanic ash may be deposited. Fossil evidence of organisms without hard body parts, such as shell, bone, teeth, and wood stems, is sparse, but exists in the form of ancient microfossils and the fossilization of ancient burrows and a few soft-bodied organisms. Some insects have been preserved in resin. The age of fossils can often be deduced from the geologic context in which they are found (the strata); and their age also can be determined with [[radiometric dating]].
  
 +
The comparison of fossils of extinct organisms in older geological strata with fossils found in more recent strata or with living organisms is considered strong evidence of descent with modification. Fossils found in more recent strata are often very similar to, or indistinguishable from living species, whereas the older the fossils the more different they are from living organisms or recent fossils. In addition, fossil evidence reveals that species of greater complexity have appeared on the earth over time, beginning in the Precambrian era some 600 millions of years ago with the first eukaryotes. The fossil records support the view that there is orderly progression in which each stage emerges from, or builds upon, preceding stages.
  
 +
One of the problems with fossil evidence is the general lack of gradually sequenced intermediary forms. There are some fossil lineages that appear quite well-represented, such as from therapsid reptiles to the mammals, and between what is considered land-living ancestors of the whales and their ocean-living descendants. The transition from an ancestral horse (Eohippus) and the modern [[horse]] (Equus) is also significant, and [[Archaeopteryx]] has been postulated as fitting the gap between reptiles and birds. But generally, [[Paleontology|paleontologists]] do not find a steady change from ancestral forms to descendant forms, but rather discontinuities, or gaps in most every phyletic series. This has been explained both by the incompleteness of the fossil record and by proposals of speciation that involve short periods of time, rather than millions of years. (Notably, there are also gaps between living organisms, with a lack of intermediaries between whales and terrestrial mammals, between reptiles and birds, and between flowering plants and their closest relatives.) Archaeopteryx has recently come under criticism as a transitional fossil between reptiles and birds (Wells 2000).
  
 +
The fact that the fossil evidence supports the view that species tend to remain stable throughout their existence and that new species appear suddenly is not problematic for the theory of descent with modification, but only with Darwin's concept of gradualism.
  
===Darwinism and Neo-Darwinism===
+
====Morphological evidence====
  
Define the terms
+
The study of comparative anatomy also yields evidence for the theory of descent with modification. For one, there are structures in diverse species that have similar internal organization yet perform different functions. [[Vertebrate]] limbs are a common example of such ''homologous structures.'' Bat wings, for example, are very similar to human hands. Also similar are the forelimbs of the penguin, the porpoise, the rat, and the alligator. In addition, these features derive from the same structures in the embryo stage. As queried earlier, “why would a rat run, a bat fly, a porpoise swim and a man type” all with limbs using the same bone structure if not coming from a common ancestor, since these are surely not the most ideal structures for each use (Gould 1983).
  
Greatly shorten the "modern synthesis section" as this should just be a portal article.
+
Likewise, a structure may exist with little or no purpose in one organism, yet the same structure has a clear purpose in other species. These features are called [[vestigial organ]]s or vestigial characters. The human [[wisdom teeth]] and [[Vermiform appendix|appendix]] are common examples. Likewise, some snakes have pelvic bones and limb bones, and some blind salamanders and blind cave fish have eyes. Such features would be the prediction of the theory of descent with modification, suggesting that they share a common ancestry with organisms that have the same structure, but which is functional.
  
The Modern Synthesis
+
For the point of view of classification, it can be observed that various species exhibit a sense of "relatedness," such as various catlike mammals can be put in the same family (Felidae), dog-like mammals in the same family (Canidae), and bears in the same family (Ursidae), and so forth, and then these and other similar mammals can be combined into the same order (Carnivora). This sense of relatedness, from external features, fits the expectations of the theory of descent with modification.  
The current understanding of the mechanistics of evolution differs considerably from the theory first outlined by Charles Darwin. Importantly, advances in [[genetics]] pioneered by [[Gregor Mendel]] led to a sophisticated understanding of the basis of variation and the mechanisms of inheritance. In addition natural selection has come to be seen as only one of a number of forces acting in evolution. A notable milestone in this regard was the formulation of the [[neutral theory of molecular evolution]] by [[Motoo Kimura]].
 
  
====Heredity====
+
[[Phylogeny]], the study of the ancestry (pattern and history) of organisms, yields a phylogenetic tree to show such relatedness (or a cladogram in other taxonomic disciplines).
Gregor Mendel first proposed a gene-based theory of inheritance, discretizing the elements responsible for heritable traints into the fundamental units we now call genes, and laying out a mathematical framework for the segregation and inheritance of variants of a gene, which we now refer to as alleles.
 
  
Later research identified the molecule [[DNA]] as the genetic material, through which traits are passed from parent to offspring, and identified genes as discrete elements within DNA. Though largely faithfully maintained within organisms, DNA is both variable across individuals and subject to a process of change or [[mutation]].
+
====Embryology====
  
Non-DNA based forms of heritable variation exist, which may change the way in which genes are expressed or maintained. The processes that produce these variations leave the genetic information intact and are often reversible. This is called [[epigenetic inheritance]] and may include phenomena such as [[DNA methylation]], [[prion]]s, and [[structural inheritance]]. Investigations continue into whether these mechanisms allow for the production of specific beneficial heritable variation in response to environmental signals. If this were shown to be the case, then some instances of evolution would lie outside of the typical Darwinian framework, which avoids any connection between environmental signals and the production of heritable variation.
+
A common evidence for evolution is the assertion that the embryos of related animals are often quite similar to each other, often much more similar than the adult forms. For example, it is held that the development of the human embryo is compatible to comparable stages of other kinds of vertebrates (fish, salamander, tortoise, chicken, pig, cow, and rabbit). Furthermore, mammals such as cows and rabbits are more similar in embryological development than with alligators. Often, the drawings of early vertebrate embryos by [[Ernst Haeckel]] are offered as proof.  
  
=====Sexual reproduction=====
+
It has further been asserted that features, such as the gill pouches in the mammalian embryo resemble those of fish, are most readily explained as being remnants from the ancestral fish, which were not eliminated because they are embryonic "organizers" for the next step of development.
In addition to passing genetic material from parent to offspring, nearly all organisms employ [[sex]] to exchange genetic material. This, combined with [[meiosis|meiotic]] [[recombination]], allows genetic variation to be propagated through an interbreeding population. These mechanisms allow individual variations to be propagated more or less independently, so that the population as a whole can retain beneficial variation and eliminate harmful variation (rather than both of these effects competing within a single asexual organism). However, these mechanisms are not perfect, and so some variation is co-propagated as a result of [[linkage]], producing some odd effects (see [[Muller's ratchet]]).
 
  
====Mechanisms of evolution====
+
Wells (2000) has criticized embryological evidence on several points. For one, it is now known that Ernst Haeckel exaggerated the similarities of vertebrate embryos at the midpoint of embryological development, and omitted the earlier embryological stages when differences were more pronounced. Also, embryological development in some frog species looks very similar to that of birds, rather than other frog species. Remarkably, even as revered an evolutionist as Ernst Mayr, in his 2001 text ''What Evolution Is,'' used Haeckel drawings from 1870, which he knew were faked, noting "Haeckel (sp.) had fraudulently substituted dog embryos for the human ones, but they were so similar to humans that these (if available) would have made the same point."
Evolution consists of two basic types of processes: those that introduce new genetic variation into a population, and those that affect the frequencies of existing variation.
 
  
There are three known processes that affect the survival of a characteristic (or, more specifically, the frequency of an allele):
+
====Biogeography====
* [[Natural selection]]
 
* Changes in [[population structure]]
 
* [[Genetic drift]]
 
  
These basic mechanisms of evolution have all been observed in the present and in evidence of their existence in the past. Their study is being used to guide the development of new medicines and other health aids such as the current effort to prevent a [[H5N1]] (i.e. bird flu) pandemic {{ref|birdflu}}
+
The geographic distribution of plants and animals offers another commonly cited evidence for evolution (common descent). The fauna on [[Australia]], with its large marsupials, is very different from that of the other continents. The fauna on [[Africa]] and [[South America]] are very different, but the fauna of [[Europe]] and [[North America]], which were connected more recently, are similar. There are few mammals on oceanic islands. These findings support the theory of descent with modification, which holds that the present distribution of flora and fauna would be related to their common origins and subsequent distribution. The longer the separation of continents, such as with Australia's long isolation, the greater the expected divergence is.
  
=====Variation=====
+
Renowned evolutionist Mayr (1982) contends that "the facts of biogeography posed some of the most insoluble dilemmas for the [[creationism|creationists]] and were eventually used by Darwin as his most convincing evidence in favor of evolution."
Without genetic variation, populations cannot evolve. The two principle sources of genetic variation are [[mutation]]s and [[gene flow]].
 
  
Other forms of genetic variation due to [[gene transfer]] include [[horizontal gene transfer]], [[antigenic shift]], and [[reassortment]].
+
====Molecular evidence====
  
Viruses can transfer genes between species [http://66.102.7.104/search?q=cache:tpICVNWaTbgJ:non.fiction.org/lj/community/ref_courses/3484/enmicro.pdf+sex+evolution+%22Horizontal+gene+transfer%22+-human+Conjugation+RNA+DNA&hl=en]. Bacteria can incorporate genes from other dead bacteria, exchange genes with living bacteria, and can have [[plasmid]]s "set up residence seperate from the host's genome" [http://www2.nau.edu/~bah/BIO471/Reader/Pennisi_2003.pdf]. "Genes that move between species play by rules that microbial experts are just beginning to discern" [http://66.102.7.104/search?q=cache:gto6eXfbGIEJ:www.niagara.edu/eli/Science%252016%2520July%25202004.GeneSwap.doc+sex+evolution+%22Horizontal+gene+transfer%22+-human+Conjugation+RNA+DNA&hl=en].
+
Evidence for common descent may be found in traits shared between all living organisms. In Darwin's day, the evidence of shared traits was based solely on visible observation of [[morphology (biology)|morphologic]] similarities, such as the fact that all birds—even those which do not fly—have wings. Today, the theory of common descent is supported by genetic similarities. For example, every living cell makes use of [[nucleic acid]]s as its genetic material, and uses the same twenty [[amino acid]]s as the building blocks for [[protein]]s. All organisms use the same [[genetic code]] (with some extremely rare and minor deviations) to translate nucleic acid sequences into proteins. The universality of these traits strongly suggests common ancestry, because the selection of these traits seems somewhat arbitrary.
  
======Mutation======
+
Similarly, the metabolism of very different organisms is based on the same biochemistry. For example, the protein [[cytochrome c]], which is needed for aerobic respiration, is universally shared in aerobic organisms, suggesting a common ancestor that used this protein. There are also variations in the amino acid sequence of cytochrome ''c'', with the more similar molecules found in organisms that appear more related ([[monkey]]s and [[cattle]]) than between those that seem less related (monkeys and [[fish]]). The cytochrome ''c'' of [[chimpanzee]]s is the same as that of humans, but very different from bread mold. Similar results have been found with blood proteins.
{{main|Mutation}}
 
  
The ultimate source of all genetic variation is mutations. They are permanent, transmissible changes to the [[genetic material]] (usually [[DNA]] or [[RNA]]) of a [[cell (biology)|cell]], and can be caused by "copying errors" in the genetic material during [[cell division]] and by exposure to [[radiation]], chemicals, or [[virus (biology)|viruses]]. In multicellular organisms, mutations can be subdivided into ''germline mutations'' that occur in the [[gamete]]s and thus can be passed on to progeny, and ''somatic mutations'' that often lead to the malfunction or death of a cell and can cause [[cancer]].
+
Other uniformity is seen in the universality of [[mitosis]] in all cellular organisms, the similarity of [[meiosis]] in all sexually reproducing organisms, the use of ATP by all organisms for energy transfer, and the fact that almost all plants use the same chlorophyll molecule for [[photosynthesis]].
  
Mutations that are not affected by natural selection are called [[Neutral theory of molecular evolution|neutral mutations]]. Their frequency in the population is governed entirely by genetic drift and gene flow. It is understood that a species' genome, in the absence of selection, undergoes a steady accumulation of neutral mutations. The [[probable mutation effect]] is the proposition that a gene that is not under selection will be destroyed by accumulated mutations. This is an aspect of [[genome degradation]].
+
The closer that organisms appear to be related, the more similar are their respective genetic sequences. That is, comparison of the genetic sequence of organisms reveals that [[phylogeny|phylogenetically]] close organisms have a higher degree of sequence similarity than organisms that are phylogenetically distant. For example, neutral human DNA sequences are approximately 1.2 percent divergent (based on substitutions) from those of their nearest genetic relative, the [[chimpanzee]], 1.6 percent from [[gorilla]]s, and 6.6 percent from [[baboon]]s. Sequence comparison is considered a measure robust enough to be used to correct erroneous assumptions in the phylogenetic tree in instances where other evidence is scarce.
  
Not all mutations are created equal; simple point mutations (substitutions), which comprise the vast majority of genetic variation, usually can only alter the function or level of expression of existing genes. [[Gene duplication]]s, which may occur via a number of mechanisms, are believed to be the major mechanism for the introduction of new genes; most genes belong to larger "families" of genes derived from a common ancestral gene (two genes from a species that are in the same family are dubbed "paralogs"). Finally, large chromosomal rearrangements (like the fusion of two chromosomes in the chimp/human common ancestor that produced human chromosome 2) almost invariably result in a speciation event.
+
Comparative studies also show that some basic genes of higher organisms are shared with homologous genes in bacteria.
  
=====Gene flow=====
+
===Evidences for the Theory of Natural Selection===
[[Gene flow]] (or gene admixture) is introduction of variation into a population from an outside population. It is the only mechanism whereby two populations can become closer genetically while increasing their variation. Migration of one population into an area occupied by a second population can result in gene flow. Gene flow operates when geography and culture are not obstacles. When gene flow is impeded by non-geographic obstacles, the situation is termed [[reproductive isolation]] and is considered to be the hallmark of [[speciation]].
 
  
====Drift====
+
Concrete evidence for the theory of modification by natural selection is limited to the [[microevolution|microevolutionary]] level—that is, events and processes at or below the level of species. As examples of such evidences, plant and animal breeders use artificial selection to produce different varieties of plants and strains of fish. Natural selection is seen in the changes of the shade of gray of populations of peppered moths ''(Biston betularia)'' observed in England.
{{main|Genetic drift}}
 
Genetic drift describes changes in allele frequency from one generation to the next due to [[sampling variance]]. The frequency of an allele in the offspring generation will vary according to a probability distribution of the frequency of the allele in the parent generation. Thus, over time, allele frequencies will tend to "drift" upward or downward, eventually becoming "fixed" - that is, going to 0% or 100% frequency. Fluctuations in allele frequency between successive generations may result in some alleles disappearing from the population. Two separate populations that begin with the same allele frequencies therefore might drift by random fluctuation into two divergent populations with different allele sets (for example, alleles that are present in one have been lost in the other).
 
  
Many aspects of genetic drift depend on the size of the population (generally abbreviated as N). This is especially important in small mating populations, where chance fluctuations from generation to generation can be large. The relative importance of natural selection and genetic drift in determining the fate of new mutations also depends on the population size and the strength of selection: when N times s (population size times strength of selection) is small, genetic drift predominates. When N times s is large, selection predominates. Thus, natural selection is 'more efficient' in large populations, or equivalently, genetic drift is stronger in small populations. Finally, the time for an allele to become fixed in the population by genetic drift (that is, for all individuals in the population to carry that allele) depends on population size, with smaller populations requiring a shorter time to fixation.
+
Another example involves the hawthorn fly, ''Rhagoletis pomonella.'' Different populations of hawthorn fly feed on different fruits. A new population spontaneously emerged in North America in the nineteenth century sometime after [[apple]]s, a non-native species, were introduced. The apple-feeding population normally feeds only on apples and not on the historically preferred fruit of hawthorns. Likewise the current hawthorn feeding population does not normally feed on apples. A current area of scientific research is the investigation of whether or not the apple-feeding race may further evolve into a new species. Some evidence, such as the fact that six out of thirteen alozyme loci are different, that hawthorn flies mature later in the season, and take longer to mature than apple flies, and that there is little evidence of interbreeding (researchers have documented a 4 to 6 percent hybridization rate) suggests this possibility (see Berlocher and Bush 1982; Berlocher and Feder 2002; Bush 1969; McPheron, Smith, and Berlocher 1988; Prokopy, Diehl, and Cooley 1988; Smith 1988).
  
====Population structure====
+
The evidence that natural selection directs the major transitions between species and originates new designs ([[macroevolution]]) involves extrapolation from these evidences on the microevolutionary level. That is, it is inferred that if moths can change their color in 50 years, then new designs or entire new genera can originate over millions of years. If geneticists see population changes for fruit flies in laboratory bottles, then given eons of time, birds can be built from reptiles and fish with jaws from jawless ancestors.  
An important facet of evolution occurs through changes in population structure. The movement of populations and changes in their size can have profound impacts on evolution over and above those governed by selection and drift.
 
  
Migration can result in admixture leading to the introduction of new genetic variation, or it may result in geographic isolation which may in turn lead to reproductive isolation or speciation.
+
However, at question has always been the sufficiency of extrapolation to the macroevolutionary level. As Mayr (2001) notes, "from Darwin's day to the present, there has been a heated controversy over whether macroevolution is nothing but an unbroken continuation of microevolution, as Darwin and his followers have claimed, or rather is disconnected from microevolution."
  
Populations may also shrink or grow over time, producing "bottlenecks" or "explosions" respectively. Since population size has a profound effect on the relative strengths of genetic drift and natural selection, changes in population size can alter the dynamics of these processes considerably. Such changes may also produce dramatic and dangerous crashes in the level of genetic variation in the population, or allow rapid increases in standing genetic variation.
+
===Teaching of evidences===
 
 
The free movement of alleles through a population may also be impeded by population structure. For example, most real-world populations are not actually fully interbreeding; geographic proximity has a strong influence on the movement of alleles within the population. Many models of evolution rely on simplifying assumptions of constant population size and fully interbreeding populations for mathematical convenience.
 
 
 
An example of the effect of population structure is the so-called [[founder effect]], resulting from a migration and population bottleneck. In this case, a single, rare allele may suddenly increase very rapidly in frequency if it happened to be prevalent in a small number of "founder" individuals. The frequency of the allele in the resulting population can be much higher than otherwise expected, especially for deleterious, disease-causing alleles.
 
  
====Selection and adaptation====
+
Textbook authors have often confused the dialogue on evolution by treating the term as if it signified one unified whole—not only descent with modification, but also the specific Darwinian and neo-Darwinian theories regarding natural selection, gradualism, speciation, and so forth. Certain textbook authors, in particular, have exacerbated this terminological confusion by lumping "evidences of evolution" into a section placed immediately after a comprehensive presentation on Darwin's overall theory—thereby creating the misleading impression that the evidences are supporting all components of Darwin's theory, including natural selection (Swarts et al. 1994). In reality, the confirming information is invariably limited to the phenomenon of evolution having occurred (descent from a common ancestor or change of gene frequencies in populations), or perhaps including evidence of natural selection within populations.
  
=====Natural selection=====
+
==Evolution as "fact" and "theory"==
{{main|Natural selection}}
+
"Evolution" has been referred to both as a "fact" and as a "theory."
Natural selection comes from differences in survival and reproduction as a result of the environment. Differential mortality is the survival rate of individuals to their reproductive age. Differential fertility is the total genetic contribution to the next generation. Note that, whereas mutations and genetic drift are random, natural selection is not, as it preferentially selects for different mutations based on differential fitnesses. For example, rolling dice is random, but always picking the higher number on two rolled dice is not random. The central role of natural selection in evolutionary theory has given rise to a strong connection between that field and the study of [[ecology]].
 
  
Natural selection can be subdivided into two categories:
+
In scientific terminology, a theory is a model of the world (or some portion of it) from which falsifiable [[hypothesis|hypotheses]] can be generated and tested through controlled experiments, or be verified through [[empiricism|empirical observation]]. "Facts" are parts of the world, or claims about the world, that are real or true regardless of what people think. Facts, as data or things that are done or exist, are ''parts'' of theories&mdash;they are things, or relationships between things, that theories take for granted in order to make predictions, or that theories predict. For example, it is a "fact" that an apple dropped on earth will fall towards the center of the planet in a straight line, and the "theory" that explains it is the current theory of [[gravitation]].  
* [[Ecological selection]] occurs when organisms that survive and reproduce increase the frequency of their genes in the gene pool over those that do not survive.
 
* [[Sexual selection]] occurs when organisms which are more attractive to the opposite sex because of their features reproduce more and thus increase the frequency of those features in the gene pool.
 
  
Natural selection also operates on mutations in several different ways:
+
In common usage, people use the word "theory" to signify "conjecture," "speculation," or "opinion." In this popular sense, "theories" are opposed to "facts." Thus, it is not uncommon for those opposed to evolution to state that it is just a theory, not a fact, implying that it is mere speculation. But for scientists, "theory" and "fact" do not stand in opposition, but rather exist in a reciprocal relationship.
* [[Purifying selection|Purifying]] or [[background selection]] eliminates deleterious mutations from a population.
 
* [[Directional selection]] increases the frequency of a beneficial mutation.
 
* [[Balancing selection]] maintains variation within a population through a number of mechanisms, including:
 
* [[Heterozygote advantage]] or overdominance, where the [[heterozygote]] is more fit than either of the homozygous forms (exemplified by human [[sickle cell anemia]] conferring resistance to [[malaria]])
 
* [[Frequency-dependent selection]], where rare variants have a higher fitness, because of thier rarity.
 
* [[Stabilizing selection]] favors average characteristics in a population, thus reducing gene variation but retaining the mean.
 
* [[Disruptive selection]] favors both extremes, and results in a bimodal distribution of gene frequency.  The mean may or may not shift.
 
  
=====Adaptation=====
+
Scientists sometimes refer to evolution as both a "fact" and a "theory."
Through the process of natural selection, species become better adapted to their environments. [[Adaptation (biology)|Adaptation]] is any evolutionary process that increases the [[fitness (biology)|fitness]] of the individual, or sometimes the trait that confers increased fitness, e.g. a stronger prehensile tail or greater visual acuity. Note that adaptation is context-sensitive; a trait that increases fitness in one environment may decrease it in another.  
 
  
Evolution does not act in a linear direction towards a pre-defined "goal" &mdash; it only responds to various types of adaptionary changes. The belief in a [[teleology|telelogical]] evolution of this sort is known as [[orthogenesis]], and is not supported by the scientific theory of evolution. One example of this misconception is the erroneous belief humans will evolve [[polydactyly|more fingers]] in the future on account of their increased use of machines such as [[computer]]s. In reality, this would only occur if more fingers offered a significantly higher rate of reproductive success than those not having them, which seems very unlikely at the current time.
+
In the broader usage of the term, calling evolution a "fact" references the confidence that scientists have that populations of organisms can change over time. In this sense, evolution occurs whenever a new strain of bacterium evolves that is resistant to antibodies that had been lethal to prior strains. Many evolutionists also call evolution a "fact" when they are referring to the theory of descent with modification, because of the substantial evidences that they perceive as having been marshaled for this theory. In this later sense, Mayr (2001) opines: "It is now actually misleading to refer to evolution as a theory, considering the massive evidence that has been discovered over the past 140 years documenting its existence. Evolution is no longer a theory, it is simply a fact."
  
Most biologists believe that adaptation occurs through the accumulation of many mutations of small effect. However, [[macromutation]] is an alternative process for adaptation that involves a single, very large scale mutation.
+
When "evolution" is referred to as a [[theory]] by evolutionists, the reference is generally to an ''explanation'' for ''why'' and ''how'' evolution occurs (such as a theory of speciation or the theory of natural selection).
  
 +
==Modern alternative mechanisms and views==
  
 +
===Symbiogenesis===
 +
'''Symbiogenesis''' is evolutionary change initiated by a long-term [[symbiosis]] of dissimilar organisms. Margulis and Sagan (2002) hold that random [[mutation]] is greatly overemphasized as the source of hereditary variation in standard [[Neo-Darwinism|Neo-Darwinistic]] doctrine. Rather, they maintain, the major source of transmitted variation actually comes from the acquisition of [[genome]]s&mdash;in other words, entire sets of [[gene]]s, in the form of whole [[organism]]s, are acquired and incorporated by other organisms. This long-term biological fusion of organisms, beginning as symbiosis, is held to be the agent of species evolution.
  
 +
For example, [[lichen]]s are a composite organism composed of a [[fungus]] and a [[Photosynthesis|photosynthetic]] partner (usually either [[green algae]] or [[cyanobacteria]], but in some cases [[algae|yellow-green algae]], [[brown algae]], or both green algae and cyanobacteria). These intertwined organisms act as a unit that is distinct from its component parts. Lichens are considered to have arisen by symbiogenesis, involving acquisitions of cyanobacterial or algal genomes.
  
 +
Another example is the photosynthetic animals or plant-animal hybrids in the form of [[slug]]s (shell-less [[mollusk]]s) that have green algae in their tissues (such as ''Elysia viridis''). These slugs are always green, never need to eat throughout their adult life, and are "permanently and discontinuously different from their gray, algae-eating ancestors" (Margulis and Sagan 2002). This is held to be another example of a symbiosis that lead to symbiogenesis.
  
 +
Yet another example is [[cattle]], which are able to digest [[cellulose]] in [[grass]] because of microbial symbionts in their [[rumen]]. Cattle cannot survive without such an association. Other examples of evolution resulting through merger of dissimilar organisms include associations of modern (scleractinian) [[coral]] and dinomastigotes (such as ''Gymnodinium microadriaticum'') and the formation of new species and genera of [[flowering plant]]s when when the leaves of these plants integrated a bacterial genome.
  
 +
The formation of [[eukaryote]]s is postulated to have occurred through a symbiotic relationship between prokaryotes, a theory called ''endosymbiosis''. According to this theory, [[mitochondria]], [[chloroplast]]s, [[flagellum|flagella]], and even the cell nucleus would have arisen from prokaryote bacteria that gave up their independence for the protective and nutritive environment within a host organism.
  
==Evidence of evolution==
+
Margulis and Sagan (2002) state that the formation of new species by inheritance of acquired microbes is best documented in [[protist]]s. They conclude that "details abound that support the concept that all visible organisms, plants, animals, and fungi evolved by "body fusion."
{{main|Evidence of evolution}}
 
  
Overall— mainly descent with modification. evidence for natural selection is ....
+
===More complex tree of life===
Need to make this section very short, and to the point. Can add the evidences of evolution article in here as well, but keep brief and too the point. Can add about textbook treatment as well.
 
  
 +
The conventional paradigm of the theory of descent with modification presumes that the history of life maps as the "tree of life," a tree beginning with the trunk as one universal common ancestor and then progressively branching, with modern species at the twig ends. However, that clean and simple pattern is being called into question due to discoveries being made by sequencing genomes of specific organisms. Instead of being simple at its base, the tree of life is looking considerably more complex. At the level of single cells, before the emergence of multicellular organisms, the genomic signs point not to a single line of development, but rather to a bush or a network as diverse microbes at times exchange their genetic material, especially through the process of lateral gene transfer.
  
The process of evolution has left behind numerous records which reveal the history of species. While the best-known of these are [[fossil record|the fossils]], fossils are only a small part of the overall physical record of evolution. Fossils, taken together with the [[comparative anatomy]] of present-day plants and animals, constitute the ''morphological'' record. By comparing the anatomies of both modern and extinct species, biologists can reconstruct the lineages of those species with some accuracy. Using fossil evidence, for instance, the connection between [[dinosaur]]s and [[bird]]s has been established by way of so-called "[[Transitional fossil|transitional]]" species such as [[Archaeopteryx]].
+
Other complicating factors are proposed based on the relatively sudden appearance of phyla during the [[Cambrian explosion]] and on evidence that animals may have originated more than once and in different places at different times (Whittington 1985; Gordon 1999; Woese 1998; Wells 2000).
 
 
The development of [[genetics]] has allowed biologists to study the ''genetic record'' of evolution as well. Although we cannot obtain the [[DNA]] sequences of most extinct species, the degree of similarity and difference among modern species allows geneticists to reconstruct lineages with greater accuracy. It is from genetic comparisons that claims such as the 98-99% similarity between humans and [[chimpanzee]]s come from, for instance.{{ref|homotroglodytes}}
 
 
 
Other evidence used to demonstrate evolutionary lineages includes the ''[[geography|geographical]] distribution'' of species. For instance, [[monotreme]]s and most [[marsupial]]s are found only in [[Australia]], showing that their common ancestor with placental mammals lived before the submerging of the ancient [[land bridge]] between Australia and Asia.
 
 
 
Scientists correlate all of the above evidence &ndash; drawn from [[paleontology]], anatomy, genetics, and geography &ndash; with other information about the history of the earth. For instance, [[paleoclimatology]] attests to periodic [[ice age]]s during which the climate was much cooler; and these are found to match up with the spread of species such as the [[woolly mammoth]] which are better-equipped to deal with cold.
 
 
 
===Morphological evidence===
 
 
 
[[Fossil]]s are important for estimating when various lineages developed. As fossilization on an organism is an uncommon occurrence, usually requiring hard parts (like bone) and death near a site where [[sediment]]s are being deposited, the [[fossil record]] only provides sparse and intermittent information about the evolution of life. Fossil evidence of organisms without hard body parts, such as shell, bone, and teeth, is sparse but exists in the form of ancient microfossils and the fossilization of ancient burrows and a few soft-bodied organisms.
 
 
 
Fossil evidence of prehistoric organisms has been found all over the Earth. The age of fossils can often be deduced from the geologic context in which they are found; and their absolute age can be verified with [[radiometric dating]]. Some fossils bear a resemblance to organisms alive today, while others are radically different. Fossils have been used to determine at what time a lineage developed, and ''[[transitional fossil]]s'' can be used to demonstrate continuity between two different lineages. [[Paleontology|Paleontologist]]s investigate evolution largely through analysis of fossils.
 
 
 
[[Phylogeny]], the study of the ancestry of species, has revealed that structures with similar internal organization may perform divergent functions. [[Vertebrate]] limbs are a common example of such ''homologous structures''. Bat wings, for example, are very similar to hands. A [[vestigial organ]] or structure may exist with little or no purpose in one organism, though they have a clear purpose in other species. The human [[wisdom teeth]] and [[Vermiform appendix|appendix]] are common examples.
 
 
 
===Genetic sequence evidence===
 
 
 
Comparison of the genetic sequence of organisms reveals that [[phylogeny|phylogenetically]] close organisms have a higher degree of sequence similarity than organisms that are phylogenetically distant. For example, neutral human DNA sequences are approximately 1.2% divergent (based on substitutions) from those of their nearest genetic relative, the [[chimpanzee]], 1.6% from [[gorilla]]s, and 6.6% from [[baboon]]s.{{ref|baboons}} Sequence comparison is considered a measure robust enough to be used to correct erroneous assumptions in the phylogenetic tree in instances where other evidence is scarce.
 
 
 
Further evidence for common descent comes from genetic detritus such as [[pseudogene]]s, regions of DNA which are [[ortholog]]ous to a gene in a related organism, but are no longer active and appear to be undergoing a steady process of degeneration.{{ref|pseudogene}}
 
 
 
Since [[metabolism|metabolic]] processes do not leave fossils, research into the evolution of the basic cellular processes is done largely by comparison of existing organisms. Many lineages diverged when new metabolic processes appeared, and it is theoretically possible to determine when certain metabolic processes appeared by comparing the traits of the descendants of a common ancestor.
 
 
 
===Teaching of evidences===
 
 
 
Textbook authors have often confused the dialogue on evolution by treating the term as if it signified one unified whole — not only the fact of evolution having occurred, but also the specific Darwinian and neo-Darwinian theories regarding natural selection, gradualism, speciation, and so forth.  Certain textbook authors, in particular, have exacerbated this terminological confusion by lumping Aevidences of evolution@ into a section placed immediately after a comprehensive presentation on Darwin's overall theory — thereby creating the misleading impression that the evidences are supporting all components of Darwin's theory, including natural selection.  In reality, the confirming information is invariably limited to the phenomenon of evolution having occurred (descent from a common ancestor or change of gene frequencies in populations), or perhaps including evidence of natural selection within populations.  
 
  
 +
===Non-random variation===
 +
The current paradigm of the theory of natural selection is that the process has a major stochastic (random) element, with heritable variation arising through chance, and then being acted upon by the largely non-random force of natural selection made manifest as various species compete for limited resources. An alternative view is that the introduced variation is non-random.
  
 +
In particular, various theistic perspectives see directed variation, from a Supreme Being, as the creative force of evolution. Natural selection, rather than being the creative force of evolution, may be variously viewed as a force for advancement of the new variation or may be considered largely inconsequential. Some role may also be accorded differential selection, such as [[mass extinction]]s. This view sees the evolutionary process as progressive, non-materialistic, and purposeful.
  
 +
Neither of these contrasted worldviews&mdash;random variation and the purposeless, non-progressive role of natural selection, or purposeful, progressive variation&mdash;are conclusively proved or unproved by scientific methodology, and both are theoretically possible.
  
 
==History of Life==
 
==History of Life==
  
===Ancestry of organisms===
+
[[Image:Stromatolites.jpg|right|thumb|300px|[[Pre-Cambrian]] [[stromatolite]]s in the Siyeh Formation, Glacier National Park. In 2002, William Schopf of UCLA published a controversial paper in the journal ''Nature'' arguing that formations such as this possess 3.5 billion-year-old [[fossil]]ized algae microbes. If true, they would be the earliest known life on earth.]]
[[Image:ChimpThinker.jpg|right|250px|thumbnail|A [[chimpanzee]], man's closest living relative.]]
 
{{seealso|Common descent}}
 
In [[biology]], the theory of universal [[common descent]] proposes that all organisms on Earth are descended from a common ancestor or ancestral gene pool (which is called having "common descent").
 
 
 
Evidence for common descent may be found in traits shared between all living organisms. In Darwin's day, the evidence of shared traits was based solely on visible observation of [[morphology (biology)|morphologic]] similarities, such as the fact that all birds &mdash; even those which do not fly &mdash; have wings. Today, the theory of evolution has been strongly confirmed by genetics. For example, every living cell makes use of [[nucleic acid]]s as its genetic material, and uses the same twenty [[amino acid]]s as the building blocks for [[protein]]s. All organisms use the same [[genetic code]] (with some extremely rare and minor deviations) to [[translation (genetics)|translate]] nucleic acid sequences into proteins. The universality of these traits strongly suggests common ancestry, because the selection of  these traits seems somewhat arbitrary, .
 
 
 
The evolutionary process can be exceedingly slow.  Fossil evidence indicates that the diversity and complexity of modern life has developed over much of the age of the earth. [[geology|Geological]] evidence indicates that the Earth is approximately [[Age of the earth|4.6 billion years old]]. (See [[Timeline of evolution]].)
 
 
 
Studies on guppies by David Reznick at the University of California, Riverside, however, have shown that the rate of evolution through natural selection can proceed 10 thousand to 10 million times faster than what is indicated in the fossil record.{{ref|guppies}} 
 
  
Information about the early development of life includes input from the fields of geology and [[planetary science]]. These sciences provide information about the history of the Earth and the changes produced by life. A great deal of information about the early Earth has been destroyed by geological processes over the course of time.
+
The appearance of [[life]] on earth (see [[origin of life]]) is not a part of biological evolution.
  
===History of life===
+
Not much is known about the earliest developments in life. However, all existing organisms share certain traits, including cellular structure and [[genetic code]]. Most scientists interpret this to mean all existing organisms share a common ancestor that had already developed the most fundamental cellular processes. There is no scientific consensus on the relationship of the three domains of life ([[Archea]], [[Bacterium|Bacteria]], [[Eukaryota]]) or the origin of life.  
[[Image:Stromatolites.jpg|right|thumb|300px|[[Pre-Cambrian]] [[stromatolite]]s in the Siyeh Formation, [[Glacier National Park (US)|Glacier National Park]]. In 2002, William Schopf of [[University of California, Los Angeles|UCLA]] published a controversial paper in the journal ''[[Nature (journal)|Nature]]'' arguing that formations such as this possess 3.5 billion year old [[fossil]]ized [[alga]]e microbes.{{ref|glacieroldestlife}} If true, they would be the earliest known life on earth.]]
 
{{main|Timeline of evolution}}
 
The [[chemical evolution]] from [[Catalyst|self-catalytic chemicals]] to [[life]] (see [[Origin of life]]) is not a part of biological evolution.
 
  
Not much is known about the earliest developments in life. However, all existing organisms share certain traits, including cellular structure, and [[genetic code]]. Most scientists interpret this to mean all existing organisms share a common ancestor, which had already developed the most fundamental cellular processes, but there is no [[scientific consensus]] on the relationship of the three domains of life ([[Archea]], [[Bacterium|Bacteria]], [[Eukaryota]]) or the [[origin of life]]. Attempts to shed light on the earliest history of life generally focus on the behavior of [[macromolecule]]s, particularly [[RNA]], and the behavior of [[complex system]]s.
+
The emergence of oxygenic [[photosynthesis]] (around 3 billion years ago) and the subsequent emergence of an oxygen-rich, non-reducing atmosphere can be traced through the formation of banded iron deposits, and later red beds of iron oxides. This was a necessary prerequisite for the development of [[aerobic respiration|aerobic]] [[cellular respiration]], believed to have emerged around 2 billion years ago.  
  
The emergence of oxygenic [[photosynthesis]] (around 3 billion years ago) and the subsequent emergence of an oxygen-rich, non-reducing atmosphere can be traced through the formation of [[Banded iron formation|banded iron]] deposits, and later [[red bed]]s of iron oxides. This was a necessary prerequisite for the development of [[aerobic respiration|aerobic]] [[cellular respiration]], believed to have emerged around 2 billion years ago.  
+
In the last billion years, simple multicellular plants and animals began to appear in the oceans. Soon after the emergence of the first animals, the [[Cambrian explosion]] (a period of unrivaled and remarkable, but brief, organismal diversity documented in the fossils found at the Burgess Shale) saw the creation of all the major body plans, or [[phylum (biology)|phyla]], of modern animals. About 500 million years ago, [[plant]]s and [[fungi]] colonized the land, and were soon followed by [[arthropod]]s and other animals, leading to the development of the land [[ecosystem]]s of today.
  
In the last billion years, simple multicellular plants and animals began to appear in the oceans. Soon after the emergence of the first animals, the [[Cambrian explosion]] (a period of unrivaled and remarkable, but brief, organismal diversity documented in the fossils found at the [[Burgess Shale]]) saw the creation of all the major body plans, or [[phylum (biology)|phyla]], of modern animals. This event is now believed to have been triggered by the development of the [[Homeobox|Hox genes]]. About 500 million years ago, [[plant]]s and [[fungi]] colonized the land, and were soon followed by [[arthropod]]s and other animals, leading to the development of land [[ecosystem]]s with which we are familiar.
+
Utilizing the [[fossil]] record, scientists have constructed [[geological timetable]]s, or geological time scales to offer a picture of the history of life on earth, organized by presenting the type of plant and animal life according to the time of appearance (often listed in terms of era, period, epoch, and years). This timetable, for example, locates the first bacteria and the first algae in the [[Precambrian]] era, over 1 billion years ago, the first marine invertebrates in the [[Cambrian]] period of the [[Paleozoic]] era (some 580 million years ago), early mammals in the [[Triassic]] period of the [[Mesozoic]] era, the first flowering plants in the [[Cretaceous]] period of the Mesozoic era, and the development of early hominids in the [[Pliocene]] epoch of the [[Tertiary]] period of the [[Cenozoic]] era, and so forth.  
{{-}}
 
  
==Evolution and Religion==
+
One of the great puzzles in biology is the sudden appearance of most body plans of animals during the early Cambrian period and why there have been no major new structural types in the subsequent 500 million years (Mayr 2001).
  
need to add intelligent design (as this article is a portal article really)
+
Scientists also strive to show lineages, from ancestral to descendant organisms. There are numerous evidences that are used in constructing this more defined history of life, with the best known being the [[fossil]] record, but also utilizing the [[comparative anatomy]] of present-day plants and animals. By comparing the anatomies of both modern and extinct species, biologists attempt to reconstruct the lineages of those species. Transitional fossils have been proposed to picture continuity between two different lineages. For instance, the connection between [[dinosaur]]s and [[bird]]s has been proposed by way of so-called "transitional" species such as [[Archaeopteryx]].
  
There is a wide variety of religious viewpoints with respect to evolution: from the specific doctrine of Ascientific creationism,@ which stands in opposition to evolution, to views which accept the pattern observed in creation but not the process, to views which attribute a primacy to natural selection.  Millions of religious adherents do successfully juxtapose the two viewpoints of evolution and creationism. As eminent evolutionary geneticist Theodosius Dobzhansky stated, AIt is wrong to hold creation and evolution as mutually exclusive alternatives.  I am a creationist and an evolutionist.  Evolution is God=s or Nature=s, method of creation.@
+
The development of [[genetics]] also has allowed biologists to investigate the ''genetic record'' of the history of life as well. Although we cannot obtain the [[DNA]] sequences of most extinct species, the degree of similarity and difference among modern species allows geneticists to reconstruct lineages. It is from genetic comparisons that claims such as the 98 to 99 percent similarity between humans and [[chimpanzee]]s come from, for instance.
  
In particular, the theory of descent with modification would seem to pose no difficulty whatever to most religious adherents, since it is neutral with respect to the process. The mechanism that gives rise to the pattern could occur by natural selection or it could occur by the directive force of a supreme being.  
+
Other evidence used to demonstrate evolutionary lineages includes the ''geographical distribution'' of species. For instance, [[monotreme]]s and most [[marsupial]]s are found only in [[Australia]], postulating that their common ancestor with placental mammals lived before the submerging of the ancient [[land bridge]] between Australia and [[Asia]].
  
Some of the confusion in the dialogue between evolutionists and creationists is what is being referred to by the term Aevolution@ or Atheory of evolution.@ For evolutionists, a working definition of the term "evolution" is generally descent with modification or a change of gene frequencies in populations.
+
Scientists correlate all of the above evidence&mdash;drawn from [[paleontology]], anatomy, genetics, and geography&mdash;with other information about the history of the earth. For instance, [[paleoclimatology]] attests to periodic [[ice age]]s during which the climate was much cooler; and these are found to match up with the spread of species such as the [[woolly mammoth]] that are better equipped to deal with cold.
  
Since there is considerable experimental and observational evidence of populations systematically changing over time, evolutionists speak of "the fact of evolution."  There is evidence on the microevolutionary level (change in gene frequencies within populations), in terms of artificial selection or the change in the color of the peppered moths.  On a macroevolutionary level (large-scale events such as speciation and origin of new designs), various evidences such as fossil records, biogeography, and studies of homologies have strongly supported the view that all organisms have descended from common ancestors.  In fact, renowned evolutionist Mayr contends that Athe facts of biogeography posed some of the most insoluble dilemmas for the creationists and were eventually used by Darwin as his most convincing evidence in favor of evolution.@
+
==Evolution and religion==
  
Darwin helped to establish the "fact of evolution." In 1859, most scientists and laymen believed that the world was constant.  The massive evidence that Darwin presented was so convincing that within a few years every biologist became an evolutionist, believing that the world was the product of a continuing process of change.  For most biologists today, evolution is no longer a theory but simply a fact.  They may disagree with the mechanisms, but that evolution takes place — that there is a systematic change in populations — is unquestioned.
+
[[Image:Darwin ape.jpg|right|thumb|A satirical image of [[Charles Darwin]] as an [[ape]] from 1871 reflects part of the social controversy over whether humans and apes share a common lineage.]]
  
+
''Main article:'' [[Evolution and religion]]
The statement that Aevolution is a fact,@ draws the ire of scientific creationists, of course.  However, scientific creationists represent only a small body of those individuals that do believe in a creation by a supreme being.  Nonetheless, other religious adherents likewise often speak of opposition to evolution, despite having a belief system which allows descent with modification and change in gene frequencies in populations.  There are a couple of ready explanations for this.
 
  
For one, there is the case of terminological confusion. When some individuals and religious adherents use the term Aevolution,@ they are not referring to simply a systematic change in populations over time — which is a highly established fact — but are instead treating the word Aevolution@ as synonymous with the specific Darwinian theory of evolution by natural selection — a theory with which even some eminent evolutionists find troublesome as the sole explanation for observed changes.   Thus, religious adherents may reject Aevolution@ since they see the concept of randomness in natural selection as counter to their belief that a Supreme Being directs changes
+
Since the publication of the ''The Origin of Species'' in 1859, the concept of evolution has engendered controversy, particularly from religious leaders. Popular writings often tend to create an artificial dichotomy&mdash;either belief in a Creator is correct or evolution is correct: evolution and religion (specifically creation by a Supreme Being or God) are presented as if mutually exclusive alternatives. Thus, many religious adherents reject evolution out of hand, not wishing to reject God.
  
Furthermore, popular writings often tend to create an artificial dichotmy B either belief in a Creator is correct or evolution is correct B an Aeither-or dichotomy@ which tends to foster an erroneous view of the relationship between evolution and religion. By such means, evolution and religion (specifically creation by a God) are presented as if mutually exclusive alternatives.  Thus, many religious adherents reject evolution out of hand, not wishing to reject God.
+
Nevertheless, religious viewpoints are varied with respect to evolution. Some faith communities, such as "[[creationism|young-earth creationists]]" stand in opposition to both the theory of descent with modification and the theory of natural selection. Holding strictly to the letter of [[Book of Genesis|Genesis]], they hold that the Earth is only 6,000 years old, that God created all the plants and animals in the first week of creation, and that the fossil record is actually artifacts from before the [[Great Flood|Flood]].
  
===Science: fact and theory===
+
Other believers accept the pattern observed in nature (theory of descent with modification) but not the process (theory of natural selection). They hold that God as Creator had a hand in his creations at many stages along the way from bacterium to human, imparting his design and his image. This is what is classically called [[creationism]], or more narrowly "old-earth creationism," since it accepts the scientific account of the gradual development of life on earth over four billion years. They critique the young earth position by citing the verse, "with the Lord one day is as a thousand years, and a thousand years as one day" (2 Peter 3:8).
The word "evolution" has been used to refer both to a fact and a theory, and it is important to understand both these different meanings of evolution, and the relationship between fact and theory in science.
 
  
====Evolution as fact and theory====
+
Still others accept natural selection as the causal agent of large-scale change. This latter view fits that of evolutionary geneticist [[Theodosius Dobzhansky]] (1973): "It is wrong to hold creation and evolution as mutually exclusive alternatives. I am a creationist and an evolutionist. Evolution is God's or Nature's, method of creation." Theologically, this would be a [[Deism|Deist]] position, since once God set up natural selection, it would have carried on autonomously without any activity on God's part. It might be termed "theistic evolution" but certainly not "creation."
When "evolution" is used to describe a [[fact]], it refers to the observations that populations of one species of organism do, over time, change into new, or several new, species. In this sense, evolution occurs whenever a new strain of bacterium evolves that is resistant to antibodies that had been lethal to prior strains. 
 
 
 
Another clear case of evolution as fact involves the hawthorn fly, ''[[Rhagoletis pomonella]]''. Different populations of hawthorn fly feed on different fruits.  A new population spontaneously emerged in North America in the 19th century some time after [[apple]]s, a non-native species, were introduced.  The apple feeding population normally feeds only on apples and not on the historically preferred fruit of hawthorns.  Likewise the current hawthorn feeding population does not normally feed on apples.  A current area of scientific research is the investigation of whether or not the apple feeding race may further evolve into a new species.  Some evidence, such as the fact that six out of thirteen alozyme loci are different, that hawthorn flies mature later in the season, and take longer to mature, than apple flies, and that there is little evidence of interbreeding (researchers have documented a 4-6%hybridization rate) suggests that this is indeed ocurring.{{ref|applemaggot}} (see Berlocher and Bush 1982, Berlocher and Feder 2002, Bush 1969, McPheron et. al. 1988, Prokopy et. al. 1988, Smith 1988)
 
 
 
When "evolution" is used to describe a [[theory]], it refers to an ''explanation'' for <u>why</u> and <u>how</u> evolution (for example, in the sense of "speciation") occurs. An example of evolution as theory is the [[Modern synthesis|modern synthesis]] of [[Charles Darwin|Darwin]] and [[Alfred Russell Wallace|Wallace's]] theory of [[Natural selection|natural selection]] and [[Gregor Mendel|Mendel's]] principles of [[Genetics|genetics]].  This theory has three major aspects:
 
 
 
# [[Common descent]] of all [[organism]]s from a single ancestor or ancestral gene pool.
 
# Manifestation of novel traits in a lineage.
 
# Mechanisms that cause some traits to persist while others perish.
 
 
 
When people provide evidence for evolution, in some cases they are providing evidence that evolution occurs; in other cases they are providing evidence that a given theory is the best explanation yet as to why and how evolution occurs.
 
 
 
====The meaning of, and relationship between, fact and theory in science====
 
:''Main article: [[Theory#Science | Theory]]
 
 
 
The modern synthesis, like its Mendelian and Darwinian antecedents, is a ''scientific theory.''  In plain English, people use the word "theory" to signify "conjecture", "speculation", or "opinion".  In this popular sense, "theories" are opposed to "facts" &mdash; parts of the world, or claims about the world, that are real or true regardless of what people think.  In scientific terminology however, a theory is a model of the world (or some portion of it) from which [[falsifiability|falsifiable]] [[hypothesis|hypotheses]] can be generated and tested through controlled experiments, or be verified through [[empiricism|empirical observation]].  In this scientific sense, "facts" are ''parts'' of theories – they are things, or relationships between things, that theories must take for granted in order to make predictions, or that theories predict. In other words, for scientists "theory" and "fact" do not stand in opposition, but rather exist in a reciprocal relationship – for example, it is a "fact" that an apple dropped on earth will fall towards the center of the planet in a straight line, and the "theory" which explains it is the current theory of [[gravitation]]. In this same sense evolution is a fact and modern synthesis is currently the most [[predictive power|powerful]] theory explaining evolution, variation and speciation.  Within the [[science]] of biology, modern synthesis has completely replaced earlier accepted explanations for the origin of species, including [[Lamarckism]] and [[creationism]].
 
  
 +
By itself, the theory of descent with modification poses little difficulty to most religious adherents, since it is neutral with respect to the process. The mechanism that gives rise to the pattern could occur by natural selection or it could occur by the directive force of a supreme being. In 1859, most scientists and laymen believed that the biotic world was constant. The massive evidence that Darwin presented was so convincing that within a few years every biologist became an evolutionist, believing that the world was the product of a continuing process of change. For most biologists today, the view that evolution takes place—that there is a systematic change in populations—is taken as fact.
  
 +
Adherents of scientific [[creationism]], and in particular young-earth creationists, do oppose the theory of descent with modification, but they represent only a small body of those individuals that do believe in a creation by a supreme being.
  
 +
Classical creationists are likewise opposed to evolution, despite having a belief system that allows descent with modification and change in gene frequencies in populations. Mainly, they are opposed to the specific Darwinian theory of evolution by natural selection, which has three radical components that are particularly troublesome: (1) purposelessness, (2) philosophical materialism, and (3) lack of being progressive.
  
 +
Natural selection is purposeless, requiring no input from a higher Power; it does not require God or God's purposes as an explanation for the seeming harmony in the world. Thus natural selection is opposed to creation as an active process by which God acts to mold life to his purposes. Religious believers who palpably experience God acting in their personal lives find it hard to accept that God also does not act to develop his creation.
  
 +
Natural selection is materialistic, holding that matter is the main reality of existence and that mental and spiritual phenomena, including thought, will, and feeling, can be explained in terms of matter, as its byproducts. Many religious believers understand God to have created human beings for the expressed purpose of embodying reason and spirituality, by which they can know God and manifest a divine nature. A theory such as evolution, which holds that mind and spirit are mere byproducts of a materialistic process, cannot square with belief in the supremacy of mind and spirit as the highest aspects of creation.
  
 +
Evolution by natural selection is not progressive from lower to higher, but just an adaptation to local environments; it could form a man with his superior brain or a parasite, but no one could say which is higher or lower. Humans are granted no special status. The view that human beings are evolved, not as a designed end-result but as if by accident, is squarely at odds with many religious interpretations.
  
 +
Belief in creation by a higher power is linked with some notion of design. The designs of the creation begin in the mind of God, who forms creatures according to these designs. This is what the [[Gospel of John]] teaches by the statement: "In the beginning was the [[Logos|Word]]"—and [[Judaism|Jewish]], [[Islam|Muslim]] and [[Hinduism|Hindu]] scriptures have similar concepts. If there is an evolutionary process, there should be the input of God's design along the way, directing the process. In this view, protozoa cannot just evolve by a purposeless process into mammals. The creation of higher-order beings should require the investment of God's labor and thought. The development of sophisticated new designs via such a "purposeless" process as natural selection has been compared to having a hurricane assemble a 747 airplane from just the parts.
  
 +
In recent years, the [[intelligent design]] (ID) movement has gained momentum in the [[United States]]. ID essentially holds that it is possible to infer from empirical evidence that some features of the natural world are best explained by an intelligent agent. This movement seeks to present in educational institutions a scientific critique of evolutionary theory and offer the possibility of living organisms being designed. Technically it is not considered a religious perspective according to many of its advocates, since it presents its views without reference to whom or what that designer may be.
  
 
==History of evolutionary thought ==
 
==History of evolutionary thought ==
[[Image:Charles Darwin.jpg|thumb|right|130px|'''Image 6''':[[Charles Darwin]] in 1854, 5 years before he published ''[[The Origin of Species]]''.]]
 
{{main|History of evolutionary thought}}
 
  
The idea of biological evolution has existed since ancient times, notably among Hellenists such as [[Epicurus]] and [[Anaximander]], but the modern theory was not established until the 18th and 19th centuries, by scientists such as [[Jean-Baptiste Lamarck]] and [[Charles Darwin]]. While transmutation of species was accepted by a sizeable number of scientists before 1859, it was the publication of Charles Darwin's ''[[The Origin of Species]]'' which provided the first cogent mechanism by which evolutionary change could occur: his theory of natural selection. Darwin was motivated to publish his work on evolution after receiving a letter from [[Alfred Russel Wallace]], in which Wallace revealed his own discovery of natural selection. As such, Wallace is sometimes given shared credit for the theory of evolution.
+
The idea of biological evolution has existed since ancient times, notably among Hellenists such as [[Epicurus]] and [[Anaximander]], but the modern theory was not established until the eighteenth and nineteenth centuries, by scientists such as [[Jean-Baptiste Lamarck]] and [[Charles Darwin]]. While transmutation of species was accepted by a sizeable number of scientists before 1859, it was the publication of Charles Darwin's ''The Origin of Species'' that provided the mechanism of natural selection as the means by which evolutionary change occurs. Darwin was motivated to publish his work after receiving a letter from [[Alfred Russel Wallace]], in which Wallace revealed his own concept of natural selection.  
  
Darwin's theory, though it succeeded in profoundly shaking scientific opinion regarding the development of life, could not explain the source of variation in traits within a species, and Darwin's proposal of a [[heredity|hereditary]] mechanism ([[pangenesis]]) was not compelling to most biologists. It was not until the late 19th and early 20th centuries that these mechanisms were established.
+
Darwin's theory could not explain the source of variation in traits within a species, and Darwin's proposal of a [[heredity|hereditary]] mechanism (pangenesis) was not compelling to most biologists. It was not until the late nineteenth and early twentieth centuries that these mechanisms were established.
  
[[Image:Stephen Jay Gould.png|left|frame|'''Image 7''': [[Stephen Jay Gould]], who, along with [[Niles Eldredge]], proposed the theory of [[punctuated equilibrium]] in 1972.]]
+
When [[Gregor Mendel]]'s work regarding the nature of inheritance in the late nineteenth century was "rediscovered," it led to a storm of conflict between Mendelians (Charles Benedict Davenport) and biometricians (Walter Frank Raphael Weldon and Karl Pearson), who insisted that the great majority of traits important to evolution must show continuous variation that was not explainable by Mendelian analysis. Eventually, the two models were reconciled and merged, primarily through the work of the biologist and statistician R.A. Fisher. This combined approach, applying a rigorous statistical model to Mendel's theories of inheritance via genes, became known in the 1930s and 1940s as the [[modern synthesis|modern evolutionary synthesis]].
  
When [[Gregor Mendel]]'s work regarding the nature of inheritance in the late [[19th century]] was "rediscovered" in 1900, it led to a storm of conflict between Mendelians ([[Charles Benedict Davenport]]) and biometricians ([[Walter Frank Raphael Weldon]] and [[Karl Pearson]]), who insisted that the great majority of traits important to evolution must show continuous variation that was not explainable by Mendelian analysis. Eventually, the two models were reconciled and merged, primarily through the work of the biologist and statistician [[R.A. Fisher]]. This combined approach, applying a rigorous statistical model to Mendel's theories of inheritance via genes, became known in the 1930s and 1940s as the [[modern evolutionary synthesis]].
+
In the 1940s, Oswald Avery, Colin McCleod, and Maclyn McCarty definitively identified [[DNA|deoxyribonucleic acid (DNA)]] as the "transforming principle" responsible for transmitting genetic information. In 1953, Francis Crick and James Watson published their famous paper on the structure of DNA, based on the research of Rosalind Franklin and Maurice Wilkins. These developments ignited the era of [[molecular biology]] and transformed the understanding of evolution into a molecular process: the [[mutation]] of segments of DNA.  
  
In the 1940s, following up on [[Griffith's experiment]], [[Oswald Avery|Avery]], [[Colin McCleod|McCleod]] and [[Maclyn McCarty|McCarty]] definitively identified [[DNA|deoxyribonucleic acid (DNA)]] as the "transforming principle" responsible for transmitting genetic information. In [[1953]], [[Francis Crick]] and [[James Watson]] published their famous paper on the structure of DNA, based on the research of [[Rosalind Franklin]] and [[Maurice Wilkins]]. These developments ignited the era of [[molecular biology]] and transformed the understanding of evolution into a molecular process: the [[mutation]] of segments of DNA (see [[molecular evolution]]).
+
George C. Williams' 1966 ''Adaptation and Natural Selection: A Critique of Some Current Evolutionary Thought'' marked a departure from the idea of group selection towards the modern notion of the gene as the unit of selection. In the mid-1970s, Motoo Kimura formulated the neutral theory of molecular evolution, firmly establishing the importance of [[genetic drift]] as a major mechanism involved in evolution.
  
[[George C. Williams]]' 1966 ''Adaptation and natural selection: A Critique of some Current Evolutionary Thought'' marked a departure from the idea of group selection towards the modern notion of the gene as the unit of selection. In the mid-[[1970s]], [[Motoo Kimura]] formulated the [[neutral theory of molecular evolution]], firmly establishing the importance of [[genetic drift]] as a major mechanism of evolution.
+
==Disciplines in evolutionary studies==
 +
Scholars in a number of academic disciplines and subdisciplines are involved in evolutionary studies.  
  
Debates have continued within the field. One of the most prominent public debates was over the theory of [[punctuated equilibrium]], proposed in 1972 by [[paleontology|paleontologists]] [[Niles Eldredge]] and [[Stephen Jay Gould]] to explain the paucity of transitional forms between phyla in the fossil record.
+
===Physical anthropology===
{{-}}
+
[[Physical anthropology]] emerged in the late 1800s as the study of human osteology, and the fossilized skeletal remains of other [[hominid]]s. At that time, anthropologists debated whether their evidence supported Darwin's claims, because skeletal remains revealed temporal and spatial variation among hominids, but Darwin had not offered an explanation of the mechanisms that produce variation. With the recognition of Mendelian genetics and the rise of the modern synthesis, however, evolution became both the fundamental conceptual framework for, and object of study of, physical anthropologists. In addition to studying skeletal remains, they began to study genetic variation among human populations (i.e. [[Population genetics|population genetics]]; thus, some physical anthropologists began calling themselves biological anthropologists).
===Social and religious controversies===
 
[[Image:Darwin ape.jpg|right|thumb|'''Image 8''': A satirical image of [[Charles Darwin]] as an [[ape]] from 1871 reflects part of the social controversy over whether humans and apes share a common lineage.]]
 
{{main article|Social implications of the theory of evolution|Creation-evolution controversy}}
 
  
There has been constant controversy surrounding the ideas presented by ''[[The Origin of Species]]'' since it was first printed in 1859. Since the early twentieth century, however, the idea that biological evolution of some form occurred and is responsible for speciation has been almost completely uncontested within the scientific community.
+
===Evolutionary biology===
 
 
Most controversy over the theory has come because of its philosophical, cosmological, and religious implications, and supporters as well as detractors have interpreted it as generally indicating that human beings are, like all animals, evolved, and that this account of the origins of humankind is squarely at odds with many religious interpretations. The idea that humans are "merely" animals, and are genetically very closely related to [[primate]]s, have been independently argued as repellent notions by generations of detractors.
 
 
 
Others also intepreted the truth of the theory to imply varying types of social changes &mdash; one prominent example is the idea of [[eugenics]], formulated by Darwin's cousin [[Francis Galton]], which argues for the improvement of human heredity by means of political policies. Others have found different political interpretations which have been used as arguments both for and against the theory.
 
 
 
The questions raised about the relation of evolution to the origins of humans has made it an especially tenacious issue with religious traditions. It has prominently been seen as opposing a "literal" interpretation of the account of the origins of humankind as described in [[Genesis]], the first book of the [[Bible]]. In many countries &mdash; notably in the [[United States]] &mdash; this has led to what has been called the [[Creation-evolution controversy]], which has focused primarily on struggles over teaching curriculum.
 
{{-}}
 
 
 
 
 
===Disciplines in evolutionary studies===
 
Scholars in a number of academic disciplines and subdisciplines document the fact of evolution, and contribute to the theory of evolution.
 
 
 
====Physical anthropology====
 
[[Physical anthropology]] emerged in the late 1800s as the study of human osteology, and the fossilized skeletal remains of other [[hominid]]s.  At that time anthropologists debated whether their evidence supported Darwin's claims, because skeletal remains revelaed temporal and spacial variation among hominids, but Darwin had not offered an explanation of the mechanisms that produce variation.  With the recognition of Mendelian genetics and the rise of the modern synthesis, however, evolution became both the fundamental conceptual framework for, and object of study of, physical anthropologists.  In addition to studying skeletal remains, they began to study genetic variation among human populations (i.e. [[Population genetics|population genetics]]; thus, some physical anthropologists began calling themselves biological anthropologists.
 
 
 
====Evolutionary biology====
 
 
[[Evolutionary biology]] is a subfield of [[biology]] concerned with the origin and descent of [[species]], as well as their change over time.
 
[[Evolutionary biology]] is a subfield of [[biology]] concerned with the origin and descent of [[species]], as well as their change over time.
  
At first it was an [[interdisciplinarity]] field including scientists from many traditional [[taxonomy|taxonomically]] oriented disciplines. For example, it generally includes scientists who may have a specialist training in particular [[organism]]s such as [[mammalogy]], [[ornithology]], or [[herpetology]] but use those organisms as systems to answer general questions in evolution.
+
At first, it was an interdisciplinary field, including scientists from many traditional [[taxonomy|taxonomically]] oriented disciplines, but not a discipline in its own right. Scientists were involved who generally had specialist training in particular [[organism]]s or groups of organisms, such as [[mammalogy]], [[ornithology]], or [[herpetology]], but used those organisms as systems to answer general questions in evolution. Evolutionary biology as an academic discipline in its own right emerged as a result of the [[modern synthesis|modern evolutionary synthesis]] in the 1930s and 1940s. It was not until the 1970s and 1980s, however, that a significant number of universities had departments that specifically included the term ''evolutionary biology'' in their titles.
  
Evolutionary biology as an [[academic discipline]] in its own right emerged as a result of the [[modern evolutionary synthesis]] in the [[1930s]] and [[1940s]]. It was not until the [[1970s]] and [[1980s]], however, that a significant number of universities had departments that specifically included the term ''evolutionary biology'' in their titles.
+
====Evolutionary developmental biology====
 +
Evolutionary developmental biology is an emergent subfield of evolutionary biology that looks at [[genes]] of related and unrelated organisms. By comparing the [[nucleotide]] sequences of [[DNA]]/[[RNA]], it is possible to experimentally develop proposals for timelines of species development. For example, gene sequences support the perspective that chimpanzees are the closest primate ancestor to humans, and that [[arthropods]] (e.g., [[insects]]) and [[vertebrates]] have a common biological ancestor.
  
=====Evolutionary developmental biology=====
+
==References==
[[Evolutionary developmental biology]] is an emergent subfield of evolutionary biology that looks at [[genes]] of related and unrelated organisms. By comparing the explicit [[nucleotide]] sequences of [[Deoxyribonucleic_acid|DNA]]/[[RNA]], it is possible to experimentally determine and trace timelines of species development. For example, gene sequences support the conclusion that chimpanzees are the closest primate ancestor to humans, and that [[arthropods]] (e.g., insects) and [[vertebrates]] (e.g., humans) have a common biological ancestor.
 
  
 +
*Berlocher, S. H., and G. L. Bush. 1982. An electrophoretic analysis of Rhagoletis (Diptera: Tephritidae) phylogeny. ''Systematic Zoology'' 31:136–155.
 +
*Berlocher, S. H., and J. L. Feder. 2002. Sympatric speciation in phytophagous insects: moving beyond controversy? ''Annual Review of Entomology'' 47:773–815.
 +
*Bowler, P. J. 1988. ''The Non-Darwinian Revolution: Reinterpreting a Historical Myth.'' Baltimore, MD: Johns Hopkins University Press.
 +
*Bryson, B. 2004. ''A Short History of Nearly Everything.'' Black Swan Books. ISBN 076790818X
 +
*Bush, G. L. 1969. Sympatric host race formation and speciation in frugivorous flies of the genus Rhagoletis (Diptera: Tephritidae). ''Evolution'' 23:237–251.
 +
*Carroll, S. B. 2005. ''Endless Forms Most Beautiful: The New Science of Evo Devo and the Making of the Animal Kingdom.'' New York: W. W. Norton.
 +
*Curtis, H., and N. S. Barnes. 1989. ''Biology, Fifth Edition.'' New York: Worth Publishers.
 +
*Darwin, C. 1859. ''On the Origin of Species by means of Natural Selection or the Preservation of Favoured Races in the Struggle for Life.'' London: John Murray, Albemarle Street. Reprinted: Gramercy, 1995.
 +
*Dobzhansky, T. 1973. Nothing in biology makes sense except in the light of evolution. ''The American Biology Teacher'' 35:125–129.
 +
*Eldredge, N., and S. J. Gould. 1972. Punctuated equilibria: An alternative to phyletic gradualism. In T. J. M. Schopf (Ed.) ''Models in Paleobiology'' (pp. 82–115). San Francisco: Freeman, Cooper.
 +
*Gigerenzer, G., et al. 1989. ''The Empire of Chance: How Probability Changed Science and Everyday Life.'' New York: Cambridge University Press.
 +
* Gordon, M. S. 1999. The concept of monophyly: A speculative essay. ''Biology and Philosophy'' 14: 331-348.
 +
*Gould, S. J. 1980a. Is a new and general theory of evolution emerging? ''Paleobiology'' 6:119–130.
 +
*Gould, S. J. 1980b. ''The Panda's Thumb: More Reflections in Natural History.'' New York: W.W. Norton.
 +
*Gould, S. J. 1982. Darwinism and the expansion of evolutionary theory. ''Science'' 216:380–387.
 +
*Gould, S. J. 1983. ''Hen's Teeth and Horse's Toes: Further Reflections in Natural History.'' New York: W.W. Norton.
 +
*Gould, S. J. 2002. ''The Structure of Evolutionary Thought.'' Cambridge, MA: Belknap Press of Harvard University Press. ISBN 0674006135
 +
*Gould, S. J., and N. Eldredge. 1977. Punctuated equilibrium: The tempo and mode of evolution reconsidered. ''Paleobiology'' 3:115–151.
 +
*Larson, E. 2004. ''Evolution: The Remarkable History of a Scientific Theory.'' Modern Library Chronicles. ISBN 0812968492
 +
*Luria, S. E., S. J. Gould, and S. Singer. 1981. ''A View of Life.'' Menlo Park, CA: Benjamin/Cummings.
 +
*Margulis, L., and D. Sagan. 2002. ''Acquiring Genomes: A Theory of the Origins of Species''. New York: Basic Books. ISBN 0465043917.
 +
*Mayr, E. 1982. ''The Growth of Biological Thought: Diversity, Evolution, and Inheritance.'' Cambridge, MA: Belknap Press of Harvard University Press.
 +
*Mayr, E. 1991. ''One Long Argument: Charles Darwin and the Genesis of Modern Evolutionary Thought.'' Cambridge, MA: Harvard University Press.
 +
*Mayr, E. 2002. ''What Evolution Is.'' New York: Basic Books. ISBN 0465044263
 +
*McPheron, B. A., D. C. Smith, and S. H. Berlocher. 1988. Genetic differentiation between host races of Rhagoletis pomonella. ''Nature'' 336:64–66.
 +
*Prokopy, R. J., S. R. Diehl, and S. S. Cooley. 1988. Behavioral evidence for host races in Rhagoletis pomonella flies. ''Oecologia'' 76:138–147.
 +
*Smith, D. C. 1988. Heritable divergence of Rhagoletis pomonella host races by seasonal asynchrony. ''Nature'' 336:66–67.
 +
*Swarts, F. A., O. R. Anderson, and F. J. Swetz 1994. Evolution in secondary school biology textbooks of the PRC, the USA, and the latter stages of the USSR. ''Journal of Research in Science Teaching'' 31(5):475–505.
 +
*Wells, J. 2000. ''Icons of Evolution: Science or Myth? Why Much of What We Teach About Evolution is Wrong.'' Washington, DC: Regnery Publishing. ISBN 0895262002
 +
* Whittington, H. B. 1985. ''The Burgess Shale''. New Haven: Published in association with the Geological Survey of Canada by Yale University Press. ISBN 0300033486.
 +
*Williams, G. C. 1966. ''Adaptation and Natural Selection: A Critique of Some Current Evolutionary Thought.'' Princeton, NJ: Princeton University Press.
 +
* Woese, C. 1998. The universal ancestor. ''Proceedings of the National Academy of Sciences USA'' 95: 6854-6859.
 +
*Zimmer, C. 2002. ''Evolution: The Triumph of an Idea.'' Perennial. ISBN 0061138401
  
  
 
+
[[Category:Life sciences]]
 
+
[[Category:Evolution]]
 
 
 
 
 
 
 
 
==See also==
 
{| border=0 cellpadding=0
 
|- valign=top
 
|
 
*[[Abiogenesis]]
 
*[[Altruism in animals]]
 
*[[Anagenesis]]
 
*[[Argument from evolution]]
 
*[[Atavism]]
 
*[[Behavioral ecology]]
 
*[[Catagenesis (biology)|Catagenesis]]
 
*[[Cladogenesis]]
 
*[[Convergent evolution]]
 
*[[Creation-evolution controversy]]
 
*[[Endosymbiont]]
 
*[[Eugenics]]
 
*[[Evolution of sex]]
 
*[[Evolutionary algorithm]]
 
*[[Evolutionary art]]
 
*[[Evolutionary medicine]]
 
*[[Evolutionary psychology]]
 
|
 
*[[Evolutionary tree]]
 
*[[Experimental evolution]]
 
*[[Fitness landscape]]
 
*[[Genetic algorithm]]
 
*[[Gradualism]]
 
*[[Instinct]]
 
*[[Modern evolutionary synthesis]]
 
*[[Natural science]]
 
*[[Neutral theory of molecular evolution]]
 
*[[Niche construction]]
 
*[[Parallel evolution]]
 
*[[Quantum evolution]]
 
*[[Quasispecies model]]
 
*[[Scientific method]]
 
*[[Sexual selection]]
 
*[[Social implications of the theory of evolution]]
 
*[[Teratogenesis]]
 
|}
 
 
 
==Notes and references==
 
# {{note|glacieroldestlife}} "Ancient microfossils from Western Australia are again the subject of heated scientific argument: are they the oldest sign of life on Earth, or just a flaw in the rock?" "[http://www.abc.net.au/science/news/space/SpaceRepublish_497964.htm]"
 
# {{note|mechanismsofchange}} Understanding Evolution, from California's [[University of California, Berkeley|Berkeley University]].  "[http://evolution.berkeley.edu/evolibrary/article/0_0_0/evo_17] [http://evolution.berkeley.edu/evolibrary/article/0_0_0/evo_16]
 
# {{note|homotroglodytes}}Li WH, Saunders MA (2005) Initial sequence of the chimpanzee genome and comparison with the human genome. Nature 437: 69–87. Britten RJ (2002) Divergence between samples of chimpanzee and human DNA sequences is 5%, counting indels. Proc Natl Acad Sci U S A 99: 13633–13635.
 
# {{note|baboons}} Two sources: 'Genomic divergences between humans and other hominoids and the effective population size of the common ancestor of humans and chimpanzees'. and 'Quantitative Estimates of Sequence Divergence for Comparative Analyses of Mammalian Genomes' "[http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=11170892] [http://www.genome.org/cgi/content/full/13/5/813]"
 
# {{note|pseudogene}} Pseudogene evolution and natural selection for a compact genome. "[http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=10833048]"
 
# {{note|applemaggot}} Reference for emergence of new race of apple maggot flies [[http://www.nd.edu/~aforbes/]]
 
# {{note|guppies}} Evaluation of the Rate of Evolution in Natural Populations of Guppies (Poecilia reticulata) "[http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=9072971&query_hl=2]"
 
# {{note|birdflu}} The use of evolutionary principles to guide disease diagnosis and drug development with respect to bird flu (i.e. H5N1 virus) [http://www.cdc.gov/ncidod/EID/vol11no10/05-0644.htm]
 
# {{note|sexshuffling}} Understanding Evolution, from California's [[University of California, Berkeley|Berkeley University]]: "Sex can introduce new gene combinations into a population. This genetic shuffling is another important source of genetic variation."[http://evolution.berkeley.edu/evolibrary/article/0_0_0/evo_17]
 
 
 
*Berlocher, S.H. and G.L. Bush. 1982. An electrophoretic analysis of Rhagoletis (Diptera: Tephritidae) phylogeny. Systematic Zoology 31:136-155.
 
*Berlocher, S.H. and J.L. Feder. 2002. Sympatric speciation in phytophagous insects: moving beyond controversy? Annual Review of Entomology 47:773-815.
 
*Bush, G.L. 1969. Sympatric host race formation and speciation in frugivorous flies of the genus Rhagoletis (Diptera: Tephritidae). Evolution 23:237-251.
 
*Darwin, Charles [[November 24]] [[1859]]. ''On the [[Origin of Species]] by means of Natural Selection or the Preservation of Favoured Races in the Struggle for Life''. London: John Murray, Albemarle Street. 502 pages. Reprinted: Gramercy (May 22, 1995). ISBN 0517123207
 
*Prokopy, R.J., S.R. Diehl and S.S. Cooley. 1988. Behavioral evidence for host races in Rhagoletis pomonella flies. Oecologia 76:138-147.
 
*Zimmer, Carl. ''Evolution: The Triumph of an Idea''. Perennial (October 1, 2002). ISBN 0060958502
 
*Larson, Edward J. ''Evolution: The Remarkable History of a Scientific Theory'' (Modern Library Chronicles). Modern Library (May 4, 2004). ISBN 0679642889
 
*Mayr, Ernst. ''What Evolution Is''. Basic Books (October, 2002). ISBN 0465044263
 
*McPheron, B. A., D. C. Smith and S. H. Berlocher. 1988. Genetic differentiation between host races of Rhagoletis pomonella. Nature. 336:64-66.
 
*Gigerenzer, Gerd, et al., ''The empire of chance: how probability changed science and everyday life'' (New York: Cambridge University Press, 1989).
 
*Smith, D. C. 1988. Heritable divergence of Rhagoletis pomonella host races by seasonal asynchrony. Nature. 336:66-67.
 
*Williams, G.C. (1966). Adaptation and Natural Selection: A Critique of some Current Evolutionary Thought . Princeton, N.J.: Princeton University Press.
 
*[[Sean B. Carroll]], 2005, ''Endless Forms Most Beautiful: The New Science of Evo Devo and the Making of the Animal Kingdom'', W. W. Norton & Company. ISBN 0393060160
 
*[[Bill Bryson]], ''A Short History of Nearly Everything'', Black Swan Books (2004), ISBN 0-552-99704-8
 
 
 
==External links==
 
{{Spoken Wikipedia|Evolution.ogg|2005-04-18}} <!-- updated changed sections 2005-04-18 —>
 
 
 
* [http://www.talkorigins.org Talk.Origins Archive] — see also [[talk.origins]]
 
* [http://evolution.berkeley.edu/ Understanding Evolution] @ [http://berkeley.edu Berkeley]
 
* [http://nationalacademies.org/evolution/ National Academies Evolution Resources]
 
* [http://www.evowiki.org/index.php/Main_Page EvoWiki] — A wiki whose goal is to promote general evolution education, and provide mainstream scientific responses to the arguments of antievolutionists.
 
* [http://www.chains-of-reason.org/chains/evolution-by-natural-selection/introduction.htm Evolution by Natural Selection] — An introduction to the logic of the theory of evolution by natural selection
 
* [http://www.pbs.org/wgbh/evolution/index.html Evolution] — Provided by ''[[Public Broadcasting Service|PBS]]''.
 
* [http://www.newscientist.com/channel/life/evolution Everything you wanted to know about evolution] — Provided by ''[[New Scientist| New Scientist]]''.
 
* [http://evol.allenpress.com/evolonline/?request=index-html International Journal of Organic Evolution]
 
* [http://science.howstuffworks.com/evolution.htm/printable Howstuffworks.com — How Evolution Works]
 
* [http://pages.britishlibrary.net/charles.darwin/ Charles Darwin's writings]
 
* [http://www.genomenewsnetwork.org/categories/index/genome/evolution.php Evolution News from Genome News Network (GNN)]
 
* [http://www.nap.edu/books/0309063647/html/ National Academy Press: Teaching About Evolution and the Nature of Science]
 
* [http://www.evolution.mbdojo.com/evolution-for-beginners.html Evolution for beginners]
 
* [http://www.rmcybernetics.com/science/cybernetics/ai.htm RMCybernetics - AI] Evolution can create emergent behavior in a computer program.
 
* [http://www.sciencefriday.com/pages/2005/Nov/hour2_111805.html NPR - Science Friday: links to museums, articles and books.]
 
 
 
===Evolution Simulators===
 
 
 
* [http://www.truthtree.com/evolve.shtml Isolated species evolves to interact more efficiently with its environment (java applet)]
 
* [http://obermuhlner.com/public/Projects/Applets/Blobs/index.html Evolution in a predator-prey relationship (java applet)]
 
 
 
{{evolution}}
 
<!-- Categorization —>
 
[[Category:Evolutionary biology]]
 
[[Category:Evolution| ]]
 
[[Category:Theories]]
 
<!-- Localization —>
 
 
 
[[af:Evolusie]]
 
[[ar:نظرية النشوء]]
 
[[bn:বিবর্তন]]
 
[[ca:Teoria de l'evolució]]
 
[[cs:Evoluce]]
 
[[cy:Esblygiad]]
 
[[da:Evolution]]
 
[[de:Biologische Evolution]]
 
[[es:Evolución biológica]]
 
[[eo:Evoluismo]]
 
[[fa:فرگشت]]
 
[[fr:Évolution]]
 
[[ko:진화]]
 
[[id:Evolusi]]
 
[[it:Evoluzione]]
 
[[he:אבולוציה]]
 
[[lt:Evoliucija]]
 
[[lb:Evolutioun]]
 
[[hu:Evolúció]]
 
[[mk:Еволуција]]
 
[[nl:Evolutietheorie]]
 
[[ja:進化]]
 
[[no:Evolusjon]]
 
[[pl:Ewolucja biologiczna]]
 
[[pt:Evolução]]
 
[[ro:Teoria evoluţionistă]]
 
[[ru:Эволюционное учение]]
 
[[sl:Evolucija]]
 
[[sk:Evolúcia]]
 
[[su:Évolusi]]
 
[[fi:Evoluutio]]
 
[[sv:Evolution]]
 
[[th:วิวัฒนาการ]]
 
[[tr:Evrim]]
 
[[zh:进化论]]
 
 
 
  
 
{{credit|30906713}}
 
{{credit|30906713}}
[[Category:Life sciences]]
 
 
From Encylopedia Britannica:
 
Biological theory that animals and plants have their origin in other preexisting types and that the distinguishable differences are due to modifications in successive generations. It is one of the keystones of modern biological theory. In 1858 Charles Darwin and Alfred Russel Wallace jointly published a paper on evolution. The next year Darwin presented his major treatise On the Origin of Species by Means of Natural Selection, which revolutionized all later biological study. The heart of Darwinian evolution is the mechanism of natural selection. Surviving individuals, which vary (see variation) in some way that enables them to live longer and reproduce, pass on their advantage to succeeding generations. In 1937 Theodosius Dobzhansky applied Mendelian genetics (see Gregor Mendel) to Darwinian theory, contributing to a new understanding of evolution as the cumulative action of natural selection on small genetic variations in whole populations. Part of the proof of evolution is in the fossil record, which shows a succession of gradually changing forms leading up to those known today. Structural similarities and similarities in embryonic development among living forms also point to common ancestry. Molecular biology (especially the study of genes and proteins) provides the most detailed evidence of evolutionary change. Though the theory of evolution is accepted by nearly the entire scientific community, it has sparked much controversy from Darwin's time to the present; many of the objections have come from religious leaders and thinkers (see creationism) who believe that elements of the theory conflict with literal interpretations of the Bible. See also Hugo de Vries, Ernst Haeckel, human evolution, Ernst Mayr, parallel evolution, phylogeny, sociocultural evolution, speciation.
 

Latest revision as of 19:33, 21 October 2021


Charles Darwin, father of the theory of evolution by natural selection.

Broadly defined, biological evolution is any heritable change in a population of organisms over time. Changes may be slight or large, but must be passed on to the next generation (or many generations) and must involve populations, not individuals.

Similarly, the term may be presented in terms of allele frequency (with an "allele" being an alternative form of a gene, such as different alleles code for different eye colors): "Evolution can be precisely defined as any change in the frequency of alleles within a gene pool from one generation to the next" (Curtis & Barnes 1989). Both a slight change (as in pesticide resistance in a strain of bacteria) and a large change (as in the development of major new designs such as feathered wings, or even the present diversity of life from simple prokaryotes) qualify as evolution.

However, "evolution" commonly is used more narrowly to refer to the specific theory that all organisms have descended from common ancestors, also known as the "theory of descent with modification," or to refer to one explanation for the process by which change occurs, the "theory of modification through natural selection." The term also is used with reference to a comprehensive theory that includes both the non-causal pattern of descent with modification and the causal mechanism of natural selection.

Evolution is a central concept in biology. Geneticist T. Dobzhansky (1973) has stated, "Nothing in biology makes sense, except in the light of evolution," and biologist Ernst Mayr (2001) has stated, "Evolution is the most profound and powerful idea to have been conceived in the last two centuries."

Nonetheless, the concepts of evolution have often engendered controversy during the past two centuries, particularly from Christians, whose traditional views have been challenged both by the long time period of evolution and by the purposeless, materialistic mechanism inherent in having natural selection be the creative force. Modern Christian viewpoints range from rejecting both descent with modification (the pattern) and the mechanism of natural selection (the process), to accepting descent with modification but not the theory of natural selection, to those claiming natural selection as God's way of creating things. (See evolution and religion below.)

The development of modern theories of evolution began with the introduction of the concept of natural selection in a joint 1858 paper by Charles Darwin and Alfred Russel Wallace, and the publication of Darwin's 1859 book, The Origin of Species. Darwin and Wallace proposed that evolution occurs because a heritable trait that increases an individual's chance of successfully reproducing will become more common, by inheritance, from one generation to the next, and likewise a heritable trait that decreases an individual's chance of reproducing will become rarer. In the 1930s, scientists combined Darwinian natural selection with the re-discovered theory of Mendelian heredity to create the modern synthesis, which is the prevailing paradigm of evolutionary theory.

Evolutionary theory

As broadly and commonly defined in the scientific community, the term evolution connotes heritable changes in populations of organisms over time, or changes in the frequencies of alleles over time. A popular definition along these lines is that offered by Douglas J. Futuyma (1986) in Evolutionary Biology: "Biological evolution…is change in the properties of populations of organisms that transcend the lifetime of a single individual…. The changes in populations that are considered evolutionary are those that are inheritable via the genetic material from one generation to another." In this sense, the term does not specify any overall pattern of change through the ages, nor the process whereby change occurs (although the term is also employed in such a manner).

However, there are two very important and popular evolutionary theories that address the pattern and process of evolution: "theory of descent with modification" and "theory of natural selection," respectively, as well as other concepts in evolutionary theory that deal with speciation and the rate of evolution.

Theory of descent with modification

The "theory of descent with modification" is the major kinematic theory that deals with the pattern of evolution—that is, it treats non-causal relations between ancestral and descendant species, orders, phyla, and so forth. The theory of descent with modification, also called the "theory of common descent," essentially postulates that all organisms have descended from common ancestors by a continuous process of branching. In other words, narrowly defined, all life evolved from one kind of organism or from a few simple kinds, and each species arose in a single geographic location from another species that preceded it in time. Each group of organisms shares a common ancestor. In the broadest sense of the terminology, the theory of descent with modification simply states that more recent forms result from modification of earlier forms.

One of the major contributions of Charles Darwin was to marshal substantial evidence for the theory of descent with modification, particularly in his book, Origin of Species. Among the evidences that evolutionists use to document the "pattern of evolution" are the fossil record, the distribution patterns of existing species, methods of dating fossils, and comparison of homologous structures. (See evidences of evolution below.)

Theory of natural selection

Main articles: Darwinism and Natural selection

The second major evolutionary theory is the "theory of modification through natural selection," also known as the "theory of natural selection." This is a dynamic theory that involves mechanisms and causal relationships. The theory of natural selection is one explanation offered for how evolution might have occurred; in other words, the "process" by which evolution took place to arrive at the pattern.

The term natural selection may be defined as the mechanism whereby biological individuals that are endowed with favorable or deleterious traits reproduce more or less than other individuals that do not possess such traits. Natural selection generally is defined independently of whether or not there is actually an effect on the gene-frequency of a population. That is, it is limited to the selection process itself, whereby individuals in a population experience differential survival and reproduction based on a particular phenotypic variation(s).

The theory of evolution by natural selection is the comprehensive proposal involving both heritable genetic variations in a population and the mechanism of natural selection that acts on these variations, such that individuals with greater fitness are more likely to contribute offspring to the next generation, while individuals with lesser fitness are more likely to die early or fail to reproduce. As a result, genotypes with greater fitness become more abundant in the next generation, while genotypes with a lesser fitness become rarer. This theory encompasses both minor changes in gene frequency in populations, brought about by the creative force of natural selection, and major evolutionary changes brought about through natural selection, such as the origin of new designs. For Darwin, however, the term natural selection generally was used synonymously with evolution by natural selection.

In the theory of natural selection as currently conceived, there is both a chance component and a non-random component. Genetic variation is seen as developing randomly, by chance, such as through mutations or genetic recombination. Mayr (2002) states that the production of genetic variation "is almost exclusively a chance phenomena." In every generation, new mutations and recombinations arise spontaneously, producing a new spectrum of phenotypes for natural selection—a non-random selective force (Mayr 2002)—to act upon. However, Mayr (2002) also notes that chance plays an important role even in "the process of the elimination of less fit individuals," and particularly during periods of mass extinction. Thus, chance (stochastic processes, randomness) also plays a major role in the theory of natural selection.

According to the theory of natural selection, natural selection is the directing or creative force of evolution. Natural selection is considered far more than just a minor force for weeding out unfit organisms. Even Paley and other natural theologians accepted natural selection, albeit as a mechanism for removing unfit organisms, rather than as a directive force for creating new species and new designs.

Concrete evidence for the theory of modification by natural selection is limited to microevolution—that is, evolution at or below the level of species. The evidence that natural selection directs changes on the macroevolutionary level—such as the major transitions between higher taxa and the origination of new designs—necessarily involves extrapolation from these evidences on the microevolutionary level. The validity of making such extrapolations has recently been challenged by some prominent evolutionists.

The theory of natural selection received a much more contentious response than did the theory of descent with modification. One of Darwin's chief purposes in publishing the Origin of Species was to show that natural selection had been the chief agent of the changes presented in the theory of descent with modification. While the theory of descent with modification was accepted by the scientific community soon after its introduction, the theory of natural selection took until the mid-1900s to be accepted. However, even today, this theory remains controversial, with detractors in both the scientific and religious communities.

Speciation and extinction

Main articles: Speciation and Species

The concepts of speciation and extinction are important to any understanding of evolutionary theory.

Speciation is the term that refers to creation of new and distinct biological species by branching off from the ancestral population. Various mechanisms have been presented whereby a single evolutionary lineage splits into two or more genetically independent lineages. For example, allopatric speciation is held to occur in populations that become isolated geographically, such as by habitat fragmentation or migration. Sympatric speciation is held to occur when new species emerge in the same geographic area. Ernst Mayr's peripatric speciation is a proposal for a type of speciation that exists in between the extremes of allopatry and sympatry, where zones of differentiating species abut but do not overlap.

An allosaurus skeleton.

Extinction is the disappearance of species (i.e. gene pools). The moment of extinction generally occurs at the death of the last individual of that species. Extinction is not an unusual event in geological time. The Permian-Triassic extinction event was the Earth's most severe extinction event, rendering extinct 90 percent of all marine species and 70 percent of terrestrial vertebrate species. In the Cretaceous-Tertiary extinction event, many forms of life perished (including approximately 50 percent of all genera), the most often mentioned among them being the extinction of the dinosaurs.

One of the unheralded laws of evolutionary theory is that macroevolutionary changes are irreversible—lineages do not return to their ancestral form, even when they return to the ancestral way of life.

Rate of evolution

Main article: Punctuated equilibrium

The concept of gradualism has often been linked with evolutionary thought. Gradualism is a view of descent with modification as proceeding by means of slow accumulation of very small changes, with the evolving population passing through all the intermediate stages—sort of a "march of frequency distributions" through time (Luria, Gould, and Singer 1981).

Darwin himself insisted that evolution was entirely gradual. Indeed, he stated in the Origin of Species:

  • "As natural selection acts solely by accumulating slight, successive, favourable variations, it can produce no great or sudden modifications; it can act only by very short and slow steps."
  • Nature "can never take a leap, but must advance by the shortest and slowest steps."
  • "If it could be demonstrated that any complex organ existed, which could not possibly have been formed by numerous, successive, slight modifications, my theory would absolutely break down."

The Darwinian and Neo-Darwinian emphasis on gradualism has been subject to re-examination on several levels: the levels of major evolutionary trends, origin of new designs, and models of speciation.

Punctuated equilibrium. A common misconception about evolution is that the development of new species generally requires millions of years. Indeed, the gradualist view that speciation involved a slow, steady, progressive transformation of an ancestral population into a new species has dominated much of evolutionary thought from the time of Darwin. Such a transformation was commonly viewed as involving large numbers of individuals ("usually the entire ancestral population"), being "even and slow," and occurring "over all or a large part of the ancestral species' geographic range" (Eldredge & Gould 1972). This concept was applied to the development of a new species by either phyletic evolution (where the descendant species arises by the transformation of the entire ancestral population) or by speciation (where the descendant species branches off from the ancestral population).

However, paleontologists now recognize that the fossil record does not generally yield the expected sequence of slightly altered intermediary forms, but instead the sudden appearance of species, and long periods when species do not change much.

The theory of punctuated equilibrium ascribes that the fossil record accurately reflects evolutionary change. That is, it posits that macroevolutionary patterns of species are typically ones of morphological stability during their existence (stasis), and that most evolutionary change is concentrated in events of speciation—with the origin of a new species usually occurring during geologically short periods of time when the long-term stasis of a population is punctuated by this rare and rapid speciation event. The sudden transitions between species are sometimes measured on the order of hundreds or thousands of years relative to their millions of years of existence. Although the theory of punctuated equilibrium originally generated a lot of controversy, it is now viewed highly favorably in the scientific community, and has even become a part of recent textbook orthodoxy.

Note that the theory of punctuated equilibrium merely addresses the pattern of evolution and is not tied to any one mode of speciation. Although occurring in a brief period of time, the species formation can go through all the stages, or can proceed by leaps. It is even neutral with respect to natural selection.

Punctuated origin of new designs. According to the gradualist viewpoint, the origin of novel features, such as feathers in birds and jaws in fish, can be explained as having arisen from numerous, tiny, imperceptible steps, with each step being advantageous and developed by natural selection. Darwin's proposed such a resolution for the origin of the vertebrate eye.

However, there are some structures for which it is difficult to conceive how such structures could be useful in incipient stages, and thus have selective advantage. One way in which evolutionary theory has dealt with such criticisms is the concept of "preadaptation," proposing that the intermediate stage may perform useful functions different from the final stage. Incipient feathers may have been used for retaining body warmth or catching insects, for example, prior to the development of a fully functional wing.

Another solution for origin of new designs, which is gaining renewed attention among evolutionists, is that the full sequence of intermediate forms may not have existed at all, and instead key features may have developed by rapid transitions, discontinuously. This view of a punctuational origin of key features arose because of: (1) the persistent problem of the lack of fossil evidence for intermediate stages between major designs, with transitions between major groups being characteristically abrupt; and (2) the inability to conceive of functional intermediates in select cases. In the later case, prominent evolutionist Stephen Jay Gould (1980b) cites the fur-lined pouches of pocket gophers and the maxillary bone of the upper jaw of certain genera of boid snakes being split into front and rear halves: "How can a jawbone be half broken?… What good is an incipient groove or furrow on the outside? Did such hypothetical ancestors run about three-legged while holding a few scraps of food in an imperfect crease with their fourth leg?"

The concept of punctuational origin is not necessarily opposed to natural selection as the creative force. For example, the rapid transition could be the product of a very small genetic change, even one mutation occurring by chance in a key gene, which is then acted upon by natural selection. However, the concept of a punctuational origin of new designs (as with punctuational equilibrium), is also viewed favorably by those advocating divine creation, due to the alignment of this view with the concept of discontinuous variation being the product of divine input, with natural selection simply the weeding out of previous, less well-adapted forms.

Punctuational models of speciation. Punctuational models of speciation are being advanced in contrast with what is sometimes labeled the "allopatric orthodoxy" (Gould 1980a; Gould and Eldredge 1977). Allopatric orthodoxy is a process of species origin involving geographic isolation, whereby a population completely separates geographically from a large parental population and develops gradually into a new species by natural selection until their differences are so great that reproductive isolation ensues. Reproductive isolation is therefore a secondary byproduct of geographic isolation, with the process involving gradual allelic substitution. Contrasted with this view are recent punctuational models for speciation, which postulate that reproductive isolation can rise rapidly, not through gradual selection, but without selective significance. In such models, reproductive isolation originates before adaptive, phenotypic differences are acquired. Selection does not play a creative role in initiating speciation, nor in the definitive aspect of reproductive isolation, although it is usually postulated as the important factor in building subsequent adaptation. One example of this is polyploidy, where there is a multiplication of the number of chromosomes beyond the normal diploid number. Another model is chromosomal speciation, involving large changes in chromosomes due to various genetic accidents.

Darwinism and Neo-Darwinism

Main articles: Darwinism and Neo-Darwinism

Darwinism is a term generally synonymous with the theory of natural selection. Harvard evolutionist Stephen Jay Gould (1982) maintains: "Although 'Darwinism' has often been equated with evolution itself in popular literature, the term should be restricted to the body of thought allied with Darwin's own theory of mechanism [natural selection].” Although the term has been used in various ways depending on who is using it and the time period (Mayr 1991), Gould nonetheless finds a general agreement in the scientific community that "Darwinism should be restricted to the world view encompassed by the theory of natural selection itself."

The term neo-Darwinism is a very different concept. It is considered synonymous with the term "modern synthesis" or "modern evolutionary synthesis." The modern synthesis is the most significant, overall development in evolutionary thought since the time of Darwin, and is the prevailing paradigm of evolutionary biology. The modern synthesis melded the two major theories of classical Darwinism (theory of descent with modification and the theory of natural selection) with the rediscovered Mendelian genetics, recasting Darwin's ideas in terms of changes in allele frequency.

In essence, advances in genetics pioneered by Gregor Mendel led to a sophisticated concept of the basis of variation and the mechanisms of inheritance. Gregor Mendel proposed a gene-based theory of inheritance, describing the elements responsible for heritable traits as the fundamental units now called genes and laying out a mathematical framework for the segregation and inheritance of variants of a gene, which are now referred to as alleles. Later research identified the molecule DNA as the genetic material through which traits are passed from parent to offspring, and identified genes as discrete elements within DNA. Though largely maintained within organisms, DNA is both variable across individuals and subject to a process of change or mutation.

According to the modern synthesis, the ultimate source of all genetic variation is mutations. They are permanent, transmissible changes to the genetic material (usually DNA or RNA) of a cell, and can be caused by "copying errors" in the genetic material during cell division and by exposure to radiation, chemicals, or viruses.

In addition to passing genetic material from parent to offspring, nearly all organisms employ sexual reproduction to exchange genetic material. This, combined with meiotic recombination, allows genetic variation to be propagated through an interbreeding population.

According to the modern synthesis, natural selection acts on the genes, through their expression (phenotypes). Natural selection can be subdivided into two categories:

  • Ecological selection occurs when organisms that survive and reproduce increase the frequency of their genes in the gene pool over those that do not survive.
  • Sexual selection occurs when organisms that are more attractive to the opposite sex because of their features reproduce more and thus increase the frequency of those features in the gene pool.

Through the process of natural selection, species become better adapted to their environments. Note that, whereas mutations (and genetic drift) are random, natural selection is not, as it preferentially selects for different mutations based on differential fitness.

In recent years, there have been many challenges to the modern synthesis, to the point where Bowler (1988), a historian of evolutionary thought, states; "In the last decade or so it has become obvious that there is no longer a universal consensus in favor of the synthetic theory even within the ranks of working biologists." Gould (1980a) likewise notes "that theory, as a general proposition is effectively dead." These challenges include models of punctuational change, the theory of “neutralism,” and selection at levels above the individual. What some historians and philosophers of evolutionary thought see as challenges to the modern synthesis, others see as either erroneous theories or as theories that can be included within the umbrella of the modern synthesis.

Evidences of evolution

Main article: Evidence of evolution

For the broad concept of evolution ("any heritable change in a population of organisms over time"), evidences of evolution are readily apparent. Evidences include observed changes in domestic crops (creating a variety of corn with greater resistance to disease), bacterial strains (development of strains with resistance to antibiotics), laboratory animals (structural changes in fruit flies), and flora and fauna in the wild (color change in particular populations of peppered moths and polyploidy in plants).

Generally, however, the "evidences of evolution" being presented by scientists or textbook authors are for either (1) the theory of descent with modification; or (2) a comprehensive concept including both the theory of descent with modification and the theory of natural selection. In actuality, most of these evidences that have been catalogued are for the theory of descent with modification.

Evidences for the Theory of Descent with Modification

In the Origin of Species, Darwin marshaled many evidences for the theory of descent with modification, within such areas as paleontology, biogeography, morphology, and embryology. Many of these areas continue to provide the most convincing proofs of descent with modification even today (Mayr 1982; Mayr 2001). Supplementing these areas, are molecular evidences.

It is noteworthy that some of the best support for the theory of descent with modification comes from the observation of imperfections of nature, rather than perfect adaptations. As noted by Gould (1983):

All of the classical arguments for evolution are fundamentally arguments for imperfections that reflect history. They fit the pattern of observing that the leg of Reptile B is not the best for walking, because it evolved from Fish A. In other words, why would a rat run, a bat fly, a porpoise swim and a man type all with the same structures utilizing the same bones unless inherited from a common ancestor?

Fossil record

Fossil evidence of prehistoric organisms has been found all over the Earth. Fossils are traces of once living organisms. Fossilization on an organism is an uncommon occurrence, usually requiring hard parts (like bone) and death where sediments or volcanic ash may be deposited. Fossil evidence of organisms without hard body parts, such as shell, bone, teeth, and wood stems, is sparse, but exists in the form of ancient microfossils and the fossilization of ancient burrows and a few soft-bodied organisms. Some insects have been preserved in resin. The age of fossils can often be deduced from the geologic context in which they are found (the strata); and their age also can be determined with radiometric dating.

The comparison of fossils of extinct organisms in older geological strata with fossils found in more recent strata or with living organisms is considered strong evidence of descent with modification. Fossils found in more recent strata are often very similar to, or indistinguishable from living species, whereas the older the fossils the more different they are from living organisms or recent fossils. In addition, fossil evidence reveals that species of greater complexity have appeared on the earth over time, beginning in the Precambrian era some 600 millions of years ago with the first eukaryotes. The fossil records support the view that there is orderly progression in which each stage emerges from, or builds upon, preceding stages.

One of the problems with fossil evidence is the general lack of gradually sequenced intermediary forms. There are some fossil lineages that appear quite well-represented, such as from therapsid reptiles to the mammals, and between what is considered land-living ancestors of the whales and their ocean-living descendants. The transition from an ancestral horse (Eohippus) and the modern horse (Equus) is also significant, and Archaeopteryx has been postulated as fitting the gap between reptiles and birds. But generally, paleontologists do not find a steady change from ancestral forms to descendant forms, but rather discontinuities, or gaps in most every phyletic series. This has been explained both by the incompleteness of the fossil record and by proposals of speciation that involve short periods of time, rather than millions of years. (Notably, there are also gaps between living organisms, with a lack of intermediaries between whales and terrestrial mammals, between reptiles and birds, and between flowering plants and their closest relatives.) Archaeopteryx has recently come under criticism as a transitional fossil between reptiles and birds (Wells 2000).

The fact that the fossil evidence supports the view that species tend to remain stable throughout their existence and that new species appear suddenly is not problematic for the theory of descent with modification, but only with Darwin's concept of gradualism.

Morphological evidence

The study of comparative anatomy also yields evidence for the theory of descent with modification. For one, there are structures in diverse species that have similar internal organization yet perform different functions. Vertebrate limbs are a common example of such homologous structures. Bat wings, for example, are very similar to human hands. Also similar are the forelimbs of the penguin, the porpoise, the rat, and the alligator. In addition, these features derive from the same structures in the embryo stage. As queried earlier, “why would a rat run, a bat fly, a porpoise swim and a man type” all with limbs using the same bone structure if not coming from a common ancestor, since these are surely not the most ideal structures for each use (Gould 1983).

Likewise, a structure may exist with little or no purpose in one organism, yet the same structure has a clear purpose in other species. These features are called vestigial organs or vestigial characters. The human wisdom teeth and appendix are common examples. Likewise, some snakes have pelvic bones and limb bones, and some blind salamanders and blind cave fish have eyes. Such features would be the prediction of the theory of descent with modification, suggesting that they share a common ancestry with organisms that have the same structure, but which is functional.

For the point of view of classification, it can be observed that various species exhibit a sense of "relatedness," such as various catlike mammals can be put in the same family (Felidae), dog-like mammals in the same family (Canidae), and bears in the same family (Ursidae), and so forth, and then these and other similar mammals can be combined into the same order (Carnivora). This sense of relatedness, from external features, fits the expectations of the theory of descent with modification.

Phylogeny, the study of the ancestry (pattern and history) of organisms, yields a phylogenetic tree to show such relatedness (or a cladogram in other taxonomic disciplines).

Embryology

A common evidence for evolution is the assertion that the embryos of related animals are often quite similar to each other, often much more similar than the adult forms. For example, it is held that the development of the human embryo is compatible to comparable stages of other kinds of vertebrates (fish, salamander, tortoise, chicken, pig, cow, and rabbit). Furthermore, mammals such as cows and rabbits are more similar in embryological development than with alligators. Often, the drawings of early vertebrate embryos by Ernst Haeckel are offered as proof.

It has further been asserted that features, such as the gill pouches in the mammalian embryo resemble those of fish, are most readily explained as being remnants from the ancestral fish, which were not eliminated because they are embryonic "organizers" for the next step of development.

Wells (2000) has criticized embryological evidence on several points. For one, it is now known that Ernst Haeckel exaggerated the similarities of vertebrate embryos at the midpoint of embryological development, and omitted the earlier embryological stages when differences were more pronounced. Also, embryological development in some frog species looks very similar to that of birds, rather than other frog species. Remarkably, even as revered an evolutionist as Ernst Mayr, in his 2001 text What Evolution Is, used Haeckel drawings from 1870, which he knew were faked, noting "Haeckel (sp.) had fraudulently substituted dog embryos for the human ones, but they were so similar to humans that these (if available) would have made the same point."

Biogeography

The geographic distribution of plants and animals offers another commonly cited evidence for evolution (common descent). The fauna on Australia, with its large marsupials, is very different from that of the other continents. The fauna on Africa and South America are very different, but the fauna of Europe and North America, which were connected more recently, are similar. There are few mammals on oceanic islands. These findings support the theory of descent with modification, which holds that the present distribution of flora and fauna would be related to their common origins and subsequent distribution. The longer the separation of continents, such as with Australia's long isolation, the greater the expected divergence is.

Renowned evolutionist Mayr (1982) contends that "the facts of biogeography posed some of the most insoluble dilemmas for the creationists and were eventually used by Darwin as his most convincing evidence in favor of evolution."

Molecular evidence

Evidence for common descent may be found in traits shared between all living organisms. In Darwin's day, the evidence of shared traits was based solely on visible observation of morphologic similarities, such as the fact that all birds—even those which do not fly—have wings. Today, the theory of common descent is supported by genetic similarities. For example, every living cell makes use of nucleic acids as its genetic material, and uses the same twenty amino acids as the building blocks for proteins. All organisms use the same genetic code (with some extremely rare and minor deviations) to translate nucleic acid sequences into proteins. The universality of these traits strongly suggests common ancestry, because the selection of these traits seems somewhat arbitrary.

Similarly, the metabolism of very different organisms is based on the same biochemistry. For example, the protein cytochrome c, which is needed for aerobic respiration, is universally shared in aerobic organisms, suggesting a common ancestor that used this protein. There are also variations in the amino acid sequence of cytochrome c, with the more similar molecules found in organisms that appear more related (monkeys and cattle) than between those that seem less related (monkeys and fish). The cytochrome c of chimpanzees is the same as that of humans, but very different from bread mold. Similar results have been found with blood proteins.

Other uniformity is seen in the universality of mitosis in all cellular organisms, the similarity of meiosis in all sexually reproducing organisms, the use of ATP by all organisms for energy transfer, and the fact that almost all plants use the same chlorophyll molecule for photosynthesis.

The closer that organisms appear to be related, the more similar are their respective genetic sequences. That is, comparison of the genetic sequence of organisms reveals that phylogenetically close organisms have a higher degree of sequence similarity than organisms that are phylogenetically distant. For example, neutral human DNA sequences are approximately 1.2 percent divergent (based on substitutions) from those of their nearest genetic relative, the chimpanzee, 1.6 percent from gorillas, and 6.6 percent from baboons. Sequence comparison is considered a measure robust enough to be used to correct erroneous assumptions in the phylogenetic tree in instances where other evidence is scarce.

Comparative studies also show that some basic genes of higher organisms are shared with homologous genes in bacteria.

Evidences for the Theory of Natural Selection

Concrete evidence for the theory of modification by natural selection is limited to the microevolutionary level—that is, events and processes at or below the level of species. As examples of such evidences, plant and animal breeders use artificial selection to produce different varieties of plants and strains of fish. Natural selection is seen in the changes of the shade of gray of populations of peppered moths (Biston betularia) observed in England.

Another example involves the hawthorn fly, Rhagoletis pomonella. Different populations of hawthorn fly feed on different fruits. A new population spontaneously emerged in North America in the nineteenth century sometime after apples, a non-native species, were introduced. The apple-feeding population normally feeds only on apples and not on the historically preferred fruit of hawthorns. Likewise the current hawthorn feeding population does not normally feed on apples. A current area of scientific research is the investigation of whether or not the apple-feeding race may further evolve into a new species. Some evidence, such as the fact that six out of thirteen alozyme loci are different, that hawthorn flies mature later in the season, and take longer to mature than apple flies, and that there is little evidence of interbreeding (researchers have documented a 4 to 6 percent hybridization rate) suggests this possibility (see Berlocher and Bush 1982; Berlocher and Feder 2002; Bush 1969; McPheron, Smith, and Berlocher 1988; Prokopy, Diehl, and Cooley 1988; Smith 1988).

The evidence that natural selection directs the major transitions between species and originates new designs (macroevolution) involves extrapolation from these evidences on the microevolutionary level. That is, it is inferred that if moths can change their color in 50 years, then new designs or entire new genera can originate over millions of years. If geneticists see population changes for fruit flies in laboratory bottles, then given eons of time, birds can be built from reptiles and fish with jaws from jawless ancestors.

However, at question has always been the sufficiency of extrapolation to the macroevolutionary level. As Mayr (2001) notes, "from Darwin's day to the present, there has been a heated controversy over whether macroevolution is nothing but an unbroken continuation of microevolution, as Darwin and his followers have claimed, or rather is disconnected from microevolution."

Teaching of evidences

Textbook authors have often confused the dialogue on evolution by treating the term as if it signified one unified whole—not only descent with modification, but also the specific Darwinian and neo-Darwinian theories regarding natural selection, gradualism, speciation, and so forth. Certain textbook authors, in particular, have exacerbated this terminological confusion by lumping "evidences of evolution" into a section placed immediately after a comprehensive presentation on Darwin's overall theory—thereby creating the misleading impression that the evidences are supporting all components of Darwin's theory, including natural selection (Swarts et al. 1994). In reality, the confirming information is invariably limited to the phenomenon of evolution having occurred (descent from a common ancestor or change of gene frequencies in populations), or perhaps including evidence of natural selection within populations.

Evolution as "fact" and "theory"

"Evolution" has been referred to both as a "fact" and as a "theory."

In scientific terminology, a theory is a model of the world (or some portion of it) from which falsifiable hypotheses can be generated and tested through controlled experiments, or be verified through empirical observation. "Facts" are parts of the world, or claims about the world, that are real or true regardless of what people think. Facts, as data or things that are done or exist, are parts of theories—they are things, or relationships between things, that theories take for granted in order to make predictions, or that theories predict. For example, it is a "fact" that an apple dropped on earth will fall towards the center of the planet in a straight line, and the "theory" that explains it is the current theory of gravitation.

In common usage, people use the word "theory" to signify "conjecture," "speculation," or "opinion." In this popular sense, "theories" are opposed to "facts." Thus, it is not uncommon for those opposed to evolution to state that it is just a theory, not a fact, implying that it is mere speculation. But for scientists, "theory" and "fact" do not stand in opposition, but rather exist in a reciprocal relationship.

Scientists sometimes refer to evolution as both a "fact" and a "theory."

In the broader usage of the term, calling evolution a "fact" references the confidence that scientists have that populations of organisms can change over time. In this sense, evolution occurs whenever a new strain of bacterium evolves that is resistant to antibodies that had been lethal to prior strains. Many evolutionists also call evolution a "fact" when they are referring to the theory of descent with modification, because of the substantial evidences that they perceive as having been marshaled for this theory. In this later sense, Mayr (2001) opines: "It is now actually misleading to refer to evolution as a theory, considering the massive evidence that has been discovered over the past 140 years documenting its existence. Evolution is no longer a theory, it is simply a fact."

When "evolution" is referred to as a theory by evolutionists, the reference is generally to an explanation for why and how evolution occurs (such as a theory of speciation or the theory of natural selection).

Modern alternative mechanisms and views

Symbiogenesis

Symbiogenesis is evolutionary change initiated by a long-term symbiosis of dissimilar organisms. Margulis and Sagan (2002) hold that random mutation is greatly overemphasized as the source of hereditary variation in standard Neo-Darwinistic doctrine. Rather, they maintain, the major source of transmitted variation actually comes from the acquisition of genomes—in other words, entire sets of genes, in the form of whole organisms, are acquired and incorporated by other organisms. This long-term biological fusion of organisms, beginning as symbiosis, is held to be the agent of species evolution.

For example, lichens are a composite organism composed of a fungus and a photosynthetic partner (usually either green algae or cyanobacteria, but in some cases yellow-green algae, brown algae, or both green algae and cyanobacteria). These intertwined organisms act as a unit that is distinct from its component parts. Lichens are considered to have arisen by symbiogenesis, involving acquisitions of cyanobacterial or algal genomes.

Another example is the photosynthetic animals or plant-animal hybrids in the form of slugs (shell-less mollusks) that have green algae in their tissues (such as Elysia viridis). These slugs are always green, never need to eat throughout their adult life, and are "permanently and discontinuously different from their gray, algae-eating ancestors" (Margulis and Sagan 2002). This is held to be another example of a symbiosis that lead to symbiogenesis.

Yet another example is cattle, which are able to digest cellulose in grass because of microbial symbionts in their rumen. Cattle cannot survive without such an association. Other examples of evolution resulting through merger of dissimilar organisms include associations of modern (scleractinian) coral and dinomastigotes (such as Gymnodinium microadriaticum) and the formation of new species and genera of flowering plants when when the leaves of these plants integrated a bacterial genome.

The formation of eukaryotes is postulated to have occurred through a symbiotic relationship between prokaryotes, a theory called endosymbiosis. According to this theory, mitochondria, chloroplasts, flagella, and even the cell nucleus would have arisen from prokaryote bacteria that gave up their independence for the protective and nutritive environment within a host organism.

Margulis and Sagan (2002) state that the formation of new species by inheritance of acquired microbes is best documented in protists. They conclude that "details abound that support the concept that all visible organisms, plants, animals, and fungi evolved by "body fusion."

More complex tree of life

The conventional paradigm of the theory of descent with modification presumes that the history of life maps as the "tree of life," a tree beginning with the trunk as one universal common ancestor and then progressively branching, with modern species at the twig ends. However, that clean and simple pattern is being called into question due to discoveries being made by sequencing genomes of specific organisms. Instead of being simple at its base, the tree of life is looking considerably more complex. At the level of single cells, before the emergence of multicellular organisms, the genomic signs point not to a single line of development, but rather to a bush or a network as diverse microbes at times exchange their genetic material, especially through the process of lateral gene transfer.

Other complicating factors are proposed based on the relatively sudden appearance of phyla during the Cambrian explosion and on evidence that animals may have originated more than once and in different places at different times (Whittington 1985; Gordon 1999; Woese 1998; Wells 2000).

Non-random variation

The current paradigm of the theory of natural selection is that the process has a major stochastic (random) element, with heritable variation arising through chance, and then being acted upon by the largely non-random force of natural selection made manifest as various species compete for limited resources. An alternative view is that the introduced variation is non-random.

In particular, various theistic perspectives see directed variation, from a Supreme Being, as the creative force of evolution. Natural selection, rather than being the creative force of evolution, may be variously viewed as a force for advancement of the new variation or may be considered largely inconsequential. Some role may also be accorded differential selection, such as mass extinctions. This view sees the evolutionary process as progressive, non-materialistic, and purposeful.

Neither of these contrasted worldviews—random variation and the purposeless, non-progressive role of natural selection, or purposeful, progressive variation—are conclusively proved or unproved by scientific methodology, and both are theoretically possible.

History of Life

Pre-Cambrian stromatolites in the Siyeh Formation, Glacier National Park. In 2002, William Schopf of UCLA published a controversial paper in the journal Nature arguing that formations such as this possess 3.5 billion-year-old fossilized algae microbes. If true, they would be the earliest known life on earth.

The appearance of life on earth (see origin of life) is not a part of biological evolution.

Not much is known about the earliest developments in life. However, all existing organisms share certain traits, including cellular structure and genetic code. Most scientists interpret this to mean all existing organisms share a common ancestor that had already developed the most fundamental cellular processes. There is no scientific consensus on the relationship of the three domains of life (Archea, Bacteria, Eukaryota) or the origin of life.

The emergence of oxygenic photosynthesis (around 3 billion years ago) and the subsequent emergence of an oxygen-rich, non-reducing atmosphere can be traced through the formation of banded iron deposits, and later red beds of iron oxides. This was a necessary prerequisite for the development of aerobic cellular respiration, believed to have emerged around 2 billion years ago.

In the last billion years, simple multicellular plants and animals began to appear in the oceans. Soon after the emergence of the first animals, the Cambrian explosion (a period of unrivaled and remarkable, but brief, organismal diversity documented in the fossils found at the Burgess Shale) saw the creation of all the major body plans, or phyla, of modern animals. About 500 million years ago, plants and fungi colonized the land, and were soon followed by arthropods and other animals, leading to the development of the land ecosystems of today.

Utilizing the fossil record, scientists have constructed geological timetables, or geological time scales to offer a picture of the history of life on earth, organized by presenting the type of plant and animal life according to the time of appearance (often listed in terms of era, period, epoch, and years). This timetable, for example, locates the first bacteria and the first algae in the Precambrian era, over 1 billion years ago, the first marine invertebrates in the Cambrian period of the Paleozoic era (some 580 million years ago), early mammals in the Triassic period of the Mesozoic era, the first flowering plants in the Cretaceous period of the Mesozoic era, and the development of early hominids in the Pliocene epoch of the Tertiary period of the Cenozoic era, and so forth.

One of the great puzzles in biology is the sudden appearance of most body plans of animals during the early Cambrian period and why there have been no major new structural types in the subsequent 500 million years (Mayr 2001).

Scientists also strive to show lineages, from ancestral to descendant organisms. There are numerous evidences that are used in constructing this more defined history of life, with the best known being the fossil record, but also utilizing the comparative anatomy of present-day plants and animals. By comparing the anatomies of both modern and extinct species, biologists attempt to reconstruct the lineages of those species. Transitional fossils have been proposed to picture continuity between two different lineages. For instance, the connection between dinosaurs and birds has been proposed by way of so-called "transitional" species such as Archaeopteryx.

The development of genetics also has allowed biologists to investigate the genetic record of the history of life as well. Although we cannot obtain the DNA sequences of most extinct species, the degree of similarity and difference among modern species allows geneticists to reconstruct lineages. It is from genetic comparisons that claims such as the 98 to 99 percent similarity between humans and chimpanzees come from, for instance.

Other evidence used to demonstrate evolutionary lineages includes the geographical distribution of species. For instance, monotremes and most marsupials are found only in Australia, postulating that their common ancestor with placental mammals lived before the submerging of the ancient land bridge between Australia and Asia.

Scientists correlate all of the above evidence—drawn from paleontology, anatomy, genetics, and geography—with other information about the history of the earth. For instance, paleoclimatology attests to periodic ice ages during which the climate was much cooler; and these are found to match up with the spread of species such as the woolly mammoth that are better equipped to deal with cold.

Evolution and religion

A satirical image of Charles Darwin as an ape from 1871 reflects part of the social controversy over whether humans and apes share a common lineage.

Main article: Evolution and religion

Since the publication of the The Origin of Species in 1859, the concept of evolution has engendered controversy, particularly from religious leaders. Popular writings often tend to create an artificial dichotomy—either belief in a Creator is correct or evolution is correct: evolution and religion (specifically creation by a Supreme Being or God) are presented as if mutually exclusive alternatives. Thus, many religious adherents reject evolution out of hand, not wishing to reject God.

Nevertheless, religious viewpoints are varied with respect to evolution. Some faith communities, such as "young-earth creationists" stand in opposition to both the theory of descent with modification and the theory of natural selection. Holding strictly to the letter of Genesis, they hold that the Earth is only 6,000 years old, that God created all the plants and animals in the first week of creation, and that the fossil record is actually artifacts from before the Flood.

Other believers accept the pattern observed in nature (theory of descent with modification) but not the process (theory of natural selection). They hold that God as Creator had a hand in his creations at many stages along the way from bacterium to human, imparting his design and his image. This is what is classically called creationism, or more narrowly "old-earth creationism," since it accepts the scientific account of the gradual development of life on earth over four billion years. They critique the young earth position by citing the verse, "with the Lord one day is as a thousand years, and a thousand years as one day" (2 Peter 3:8).

Still others accept natural selection as the causal agent of large-scale change. This latter view fits that of evolutionary geneticist Theodosius Dobzhansky (1973): "It is wrong to hold creation and evolution as mutually exclusive alternatives. I am a creationist and an evolutionist. Evolution is God's or Nature's, method of creation." Theologically, this would be a Deist position, since once God set up natural selection, it would have carried on autonomously without any activity on God's part. It might be termed "theistic evolution" but certainly not "creation."

By itself, the theory of descent with modification poses little difficulty to most religious adherents, since it is neutral with respect to the process. The mechanism that gives rise to the pattern could occur by natural selection or it could occur by the directive force of a supreme being. In 1859, most scientists and laymen believed that the biotic world was constant. The massive evidence that Darwin presented was so convincing that within a few years every biologist became an evolutionist, believing that the world was the product of a continuing process of change. For most biologists today, the view that evolution takes place—that there is a systematic change in populations—is taken as fact.

Adherents of scientific creationism, and in particular young-earth creationists, do oppose the theory of descent with modification, but they represent only a small body of those individuals that do believe in a creation by a supreme being.

Classical creationists are likewise opposed to evolution, despite having a belief system that allows descent with modification and change in gene frequencies in populations. Mainly, they are opposed to the specific Darwinian theory of evolution by natural selection, which has three radical components that are particularly troublesome: (1) purposelessness, (2) philosophical materialism, and (3) lack of being progressive.

Natural selection is purposeless, requiring no input from a higher Power; it does not require God or God's purposes as an explanation for the seeming harmony in the world. Thus natural selection is opposed to creation as an active process by which God acts to mold life to his purposes. Religious believers who palpably experience God acting in their personal lives find it hard to accept that God also does not act to develop his creation.

Natural selection is materialistic, holding that matter is the main reality of existence and that mental and spiritual phenomena, including thought, will, and feeling, can be explained in terms of matter, as its byproducts. Many religious believers understand God to have created human beings for the expressed purpose of embodying reason and spirituality, by which they can know God and manifest a divine nature. A theory such as evolution, which holds that mind and spirit are mere byproducts of a materialistic process, cannot square with belief in the supremacy of mind and spirit as the highest aspects of creation.

Evolution by natural selection is not progressive from lower to higher, but just an adaptation to local environments; it could form a man with his superior brain or a parasite, but no one could say which is higher or lower. Humans are granted no special status. The view that human beings are evolved, not as a designed end-result but as if by accident, is squarely at odds with many religious interpretations.

Belief in creation by a higher power is linked with some notion of design. The designs of the creation begin in the mind of God, who forms creatures according to these designs. This is what the Gospel of John teaches by the statement: "In the beginning was the Word"—and Jewish, Muslim and Hindu scriptures have similar concepts. If there is an evolutionary process, there should be the input of God's design along the way, directing the process. In this view, protozoa cannot just evolve by a purposeless process into mammals. The creation of higher-order beings should require the investment of God's labor and thought. The development of sophisticated new designs via such a "purposeless" process as natural selection has been compared to having a hurricane assemble a 747 airplane from just the parts.

In recent years, the intelligent design (ID) movement has gained momentum in the United States. ID essentially holds that it is possible to infer from empirical evidence that some features of the natural world are best explained by an intelligent agent. This movement seeks to present in educational institutions a scientific critique of evolutionary theory and offer the possibility of living organisms being designed. Technically it is not considered a religious perspective according to many of its advocates, since it presents its views without reference to whom or what that designer may be.

History of evolutionary thought

The idea of biological evolution has existed since ancient times, notably among Hellenists such as Epicurus and Anaximander, but the modern theory was not established until the eighteenth and nineteenth centuries, by scientists such as Jean-Baptiste Lamarck and Charles Darwin. While transmutation of species was accepted by a sizeable number of scientists before 1859, it was the publication of Charles Darwin's The Origin of Species that provided the mechanism of natural selection as the means by which evolutionary change occurs. Darwin was motivated to publish his work after receiving a letter from Alfred Russel Wallace, in which Wallace revealed his own concept of natural selection.

Darwin's theory could not explain the source of variation in traits within a species, and Darwin's proposal of a hereditary mechanism (pangenesis) was not compelling to most biologists. It was not until the late nineteenth and early twentieth centuries that these mechanisms were established.

When Gregor Mendel's work regarding the nature of inheritance in the late nineteenth century was "rediscovered," it led to a storm of conflict between Mendelians (Charles Benedict Davenport) and biometricians (Walter Frank Raphael Weldon and Karl Pearson), who insisted that the great majority of traits important to evolution must show continuous variation that was not explainable by Mendelian analysis. Eventually, the two models were reconciled and merged, primarily through the work of the biologist and statistician R.A. Fisher. This combined approach, applying a rigorous statistical model to Mendel's theories of inheritance via genes, became known in the 1930s and 1940s as the modern evolutionary synthesis.

In the 1940s, Oswald Avery, Colin McCleod, and Maclyn McCarty definitively identified deoxyribonucleic acid (DNA) as the "transforming principle" responsible for transmitting genetic information. In 1953, Francis Crick and James Watson published their famous paper on the structure of DNA, based on the research of Rosalind Franklin and Maurice Wilkins. These developments ignited the era of molecular biology and transformed the understanding of evolution into a molecular process: the mutation of segments of DNA.

George C. Williams' 1966 Adaptation and Natural Selection: A Critique of Some Current Evolutionary Thought marked a departure from the idea of group selection towards the modern notion of the gene as the unit of selection. In the mid-1970s, Motoo Kimura formulated the neutral theory of molecular evolution, firmly establishing the importance of genetic drift as a major mechanism involved in evolution.

Disciplines in evolutionary studies

Scholars in a number of academic disciplines and subdisciplines are involved in evolutionary studies.

Physical anthropology

Physical anthropology emerged in the late 1800s as the study of human osteology, and the fossilized skeletal remains of other hominids. At that time, anthropologists debated whether their evidence supported Darwin's claims, because skeletal remains revealed temporal and spatial variation among hominids, but Darwin had not offered an explanation of the mechanisms that produce variation. With the recognition of Mendelian genetics and the rise of the modern synthesis, however, evolution became both the fundamental conceptual framework for, and object of study of, physical anthropologists. In addition to studying skeletal remains, they began to study genetic variation among human populations (i.e. population genetics; thus, some physical anthropologists began calling themselves biological anthropologists).

Evolutionary biology

Evolutionary biology is a subfield of biology concerned with the origin and descent of species, as well as their change over time.

At first, it was an interdisciplinary field, including scientists from many traditional taxonomically oriented disciplines, but not a discipline in its own right. Scientists were involved who generally had specialist training in particular organisms or groups of organisms, such as mammalogy, ornithology, or herpetology, but used those organisms as systems to answer general questions in evolution. Evolutionary biology as an academic discipline in its own right emerged as a result of the modern evolutionary synthesis in the 1930s and 1940s. It was not until the 1970s and 1980s, however, that a significant number of universities had departments that specifically included the term evolutionary biology in their titles.

Evolutionary developmental biology

Evolutionary developmental biology is an emergent subfield of evolutionary biology that looks at genes of related and unrelated organisms. By comparing the nucleotide sequences of DNA/RNA, it is possible to experimentally develop proposals for timelines of species development. For example, gene sequences support the perspective that chimpanzees are the closest primate ancestor to humans, and that arthropods (e.g., insects) and vertebrates have a common biological ancestor.

References
ISBN links support NWE through referral fees

  • Berlocher, S. H., and G. L. Bush. 1982. An electrophoretic analysis of Rhagoletis (Diptera: Tephritidae) phylogeny. Systematic Zoology 31:136–155.
  • Berlocher, S. H., and J. L. Feder. 2002. Sympatric speciation in phytophagous insects: moving beyond controversy? Annual Review of Entomology 47:773–815.
  • Bowler, P. J. 1988. The Non-Darwinian Revolution: Reinterpreting a Historical Myth. Baltimore, MD: Johns Hopkins University Press.
  • Bryson, B. 2004. A Short History of Nearly Everything. Black Swan Books. ISBN 076790818X
  • Bush, G. L. 1969. Sympatric host race formation and speciation in frugivorous flies of the genus Rhagoletis (Diptera: Tephritidae). Evolution 23:237–251.
  • Carroll, S. B. 2005. Endless Forms Most Beautiful: The New Science of Evo Devo and the Making of the Animal Kingdom. New York: W. W. Norton.
  • Curtis, H., and N. S. Barnes. 1989. Biology, Fifth Edition. New York: Worth Publishers.
  • Darwin, C. 1859. On the Origin of Species by means of Natural Selection or the Preservation of Favoured Races in the Struggle for Life. London: John Murray, Albemarle Street. Reprinted: Gramercy, 1995.
  • Dobzhansky, T. 1973. Nothing in biology makes sense except in the light of evolution. The American Biology Teacher 35:125–129.
  • Eldredge, N., and S. J. Gould. 1972. Punctuated equilibria: An alternative to phyletic gradualism. In T. J. M. Schopf (Ed.) Models in Paleobiology (pp. 82–115). San Francisco: Freeman, Cooper.
  • Gigerenzer, G., et al. 1989. The Empire of Chance: How Probability Changed Science and Everyday Life. New York: Cambridge University Press.
  • Gordon, M. S. 1999. The concept of monophyly: A speculative essay. Biology and Philosophy 14: 331-348.
  • Gould, S. J. 1980a. Is a new and general theory of evolution emerging? Paleobiology 6:119–130.
  • Gould, S. J. 1980b. The Panda's Thumb: More Reflections in Natural History. New York: W.W. Norton.
  • Gould, S. J. 1982. Darwinism and the expansion of evolutionary theory. Science 216:380–387.
  • Gould, S. J. 1983. Hen's Teeth and Horse's Toes: Further Reflections in Natural History. New York: W.W. Norton.
  • Gould, S. J. 2002. The Structure of Evolutionary Thought. Cambridge, MA: Belknap Press of Harvard University Press. ISBN 0674006135
  • Gould, S. J., and N. Eldredge. 1977. Punctuated equilibrium: The tempo and mode of evolution reconsidered. Paleobiology 3:115–151.
  • Larson, E. 2004. Evolution: The Remarkable History of a Scientific Theory. Modern Library Chronicles. ISBN 0812968492
  • Luria, S. E., S. J. Gould, and S. Singer. 1981. A View of Life. Menlo Park, CA: Benjamin/Cummings.
  • Margulis, L., and D. Sagan. 2002. Acquiring Genomes: A Theory of the Origins of Species. New York: Basic Books. ISBN 0465043917.
  • Mayr, E. 1982. The Growth of Biological Thought: Diversity, Evolution, and Inheritance. Cambridge, MA: Belknap Press of Harvard University Press.
  • Mayr, E. 1991. One Long Argument: Charles Darwin and the Genesis of Modern Evolutionary Thought. Cambridge, MA: Harvard University Press.
  • Mayr, E. 2002. What Evolution Is. New York: Basic Books. ISBN 0465044263
  • McPheron, B. A., D. C. Smith, and S. H. Berlocher. 1988. Genetic differentiation between host races of Rhagoletis pomonella. Nature 336:64–66.
  • Prokopy, R. J., S. R. Diehl, and S. S. Cooley. 1988. Behavioral evidence for host races in Rhagoletis pomonella flies. Oecologia 76:138–147.
  • Smith, D. C. 1988. Heritable divergence of Rhagoletis pomonella host races by seasonal asynchrony. Nature 336:66–67.
  • Swarts, F. A., O. R. Anderson, and F. J. Swetz 1994. Evolution in secondary school biology textbooks of the PRC, the USA, and the latter stages of the USSR. Journal of Research in Science Teaching 31(5):475–505.
  • Wells, J. 2000. Icons of Evolution: Science or Myth? Why Much of What We Teach About Evolution is Wrong. Washington, DC: Regnery Publishing. ISBN 0895262002
  • Whittington, H. B. 1985. The Burgess Shale. New Haven: Published in association with the Geological Survey of Canada by Yale University Press. ISBN 0300033486.
  • Williams, G. C. 1966. Adaptation and Natural Selection: A Critique of Some Current Evolutionary Thought. Princeton, NJ: Princeton University Press.
  • Woese, C. 1998. The universal ancestor. Proceedings of the National Academy of Sciences USA 95: 6854-6859.
  • Zimmer, C. 2002. Evolution: The Triumph of an Idea. Perennial. ISBN 0061138401

Credits

New World Encyclopedia writers and editors rewrote and completed the Wikipedia article in accordance with New World Encyclopedia standards. This article abides by terms of the Creative Commons CC-by-sa 3.0 License (CC-by-sa), which may be used and disseminated with proper attribution. Credit is due under the terms of this license that can reference both the New World Encyclopedia contributors and the selfless volunteer contributors of the Wikimedia Foundation. To cite this article click here for a list of acceptable citing formats.The history of earlier contributions by wikipedians is accessible to researchers here:

The history of this article since it was imported to New World Encyclopedia:

Note: Some restrictions may apply to use of individual images which are separately licensed.