Difference between revisions of "Trilobite" - New World Encyclopedia

From New World Encyclopedia
 
(32 intermediate revisions by 8 users not shown)
Line 1: Line 1:
{{Taxobox_begin | color=pink | name=Trilobite}}<br/><small>Fossil range: [[Cambrian]] - [[Permian]]
+
{{Ebcompleted}}{{Paid}}{{Approved}}{{Images OK}}{{Submitted}}{{copyedited}}{{2Copyedited}}
 +
{{Trilobite Footer}}
 +
{{Taxobox_begin | color=pink | name=Trilobite}}<br/><small>Fossil range: [[Cambrian]]-[[Permian]]
 
{{Taxobox_image | image = [[Image:Asaphiscuswheelerii.jpg|200px|Asaphiscus wheeleri]] | caption = ''Asaphiscus wheeleri'', a trilobite <Br/>from Cambrian-age shale in Utah}}
 
{{Taxobox_image | image = [[Image:Asaphiscuswheelerii.jpg|200px|Asaphiscus wheeleri]] | caption = ''Asaphiscus wheeleri'', a trilobite <Br/>from Cambrian-age shale in Utah}}
 
{{Taxobox_begin_placement | color = pink}}
 
{{Taxobox_begin_placement | color = pink}}
Line 7: Line 9:
 
{{Taxobox_end_placement}}
 
{{Taxobox_end_placement}}
 
{{Taxobox_section_subdivision | color = pink | plural_taxon = Orders}}
 
{{Taxobox_section_subdivision | color = pink | plural_taxon = Orders}}
*[[Agnostida]]
+
*Agnostida
*[[Redlichiida]]
+
*Redlichiida
*[[Corynexochida]]
+
*Corynexochida
*[[Lichida]]
+
*Lichida
*[[Phacopida]]
+
*Phacopida
*[[Proetida]]
+
*Proetida
*[[Asaphida]]
+
*Asaphida
*[[Harpetida]]
+
*Harpetida
*[[Ptychopariida]]
+
*Ptychopariida
 
**doubtful order
 
**doubtful order
*[[Nektaspida]]
+
*Nektaspida
 
{{Taxobox_end}}
 
{{Taxobox_end}}
'''Trilobites''' are [[extinction|extinct]] [[arthropod]]s in the [[class (biology)|class]] '''Trilobita'''. They appeared in the [[Cambrian]] period and flourished throughout the lower [[Paleozoic]] era before slowly declining to extinction. The last of the trilobites disappeared in the [[Permian-Triassic extinction event|mass extinction]] at the end of the [[Permian]] 250 million years ago ([[mya (unit)|m.y.a.]]).
 
  
Trilobites are very well-known, and possibly the second-most famous fossil group after the [[dinosaur]]s.  They are the most diverse group of animal species preserved in the [[fossil]] record, consisting of nine (or possibly ten) orders and over 15,000 species. The trilobites are currently included along with the [[Chelicerata]] in the group [[Arachnomorpha]].
+
'''Trilobites''' are hard-shelled, segmented members of the phylum [[arthropod|Arthropoda]] and the class '''Trilobita''' that appear in the fossil record for almost 300 million years—from about 540 to 251 million years ago (mya). They existed throughout almost all of the [[Paleozoic]] era, flourishing in the earlier part of it and slowly declining in the later part, finally going extinct in the [[mass extinction#Permian-Triassic extinction event|Permian-Triassic extinction event]] about 251 mya.  
  
Most were simple, small marine creatures that walked along the seafloor and filtered mud to obtain food.
+
The most common trilobites were about 2-7 cm (1-3.5 in) in length, but over their long history they ranged in size from 1 mm-72 cm (.04 in-28 in) and exhibited so much variation on their basic body plan that they are classified into nine (or possibly ten) orders with more than 15,000 species. The smallest species are presumed to have been part of the free floating [[plankton]], while the more common, mid-sized species probably walked along the sea floor filtering mud to obtain food, and the larger varieties may have been swimming predators. The trilobites are considered to be the first animals to have evolved true [[eye]]s.
 +
{{toc}}
 +
Trilobites are thought to represent an early stage in the step-by-step development of [[life]] on Earth, but there remain alternative views about their precise cladistic connection to current species. Chaisson (2005) notes, for example, "though all trilobites have been extinct for the past 200 million years, paleobiologists are reasonably sure that some version of them gave rise to most of today’s animals." Others would assert that the trilobite line itself left no descendants, but that ancestors of the trilobites would also have given rise to species that became today's [[horseshoe crab]]s.
  
 
==Physical description==
 
==Physical description==
The bodies of trilobites are divided into three parts (''tagmata''): a [[cephalon]] (head), composed of the two preoral and first four postoral segments completely fused together; a [[thorax]] composed of freely articulating segments; and a [[pygidium]] (tail) composed of the last few segments fused together with the [[telson]]. The pygidia are still fairly rudimentary in the most primitive trilobites. The thorax is fairly flexible&mdash;fossilised trilobites are often found curled up like modern [[woodlice]] for protection.
+
The bodies of trilobites are divided into three parts or ''tagmata:'' A cephalon (head) comprising the two pre-oral and first four post-oral segments completely fused together; a thorax comprising several freely articulating segments; and a pygidium (tail) comprising the last few segments fused together with the telson (last division of the body). The pygidia are still fairly rudimentary in the most primitive trilobites. The thorax is fairly flexible&mdash;fossilized trilobites are often found curled up like modern woodlice, perhaps for protection.
  
Trilobites had a single pair of preoral [[antenna (biology)|antenna]]e and otherwise undifferentiated [[biramous]] limbs. Each exopodite (walking leg) had six segments, analogous to those of other early arthropods. The first segment also bore a feather-like epipodite, or [[gill]] branch, which was used for respiration and swimming. The limbs were covered by lateral projections called ''pleural lobes'', extending outward from a central ''axial lobe''. Contrary to popular belief, it is this longitudinal tripartite division into left and right pleural lobes and a central axial lobe that gives trilobites their name, ''not'' the division into cephalon, thorax and pygidium.
+
Trilobites had a single pair of pre-oral [[antenna (biology)|antenna]]e and otherwise undifferentiated biramous (double-branched) limbs. Each exopodite (walking leg) had six segments, analogous to those of other early [[arthropod]]s. The first segment of each walking leg also bore a feather-like epipodite, or gill branch, which is considered to have been used for respiration and swimming. "Above" the limbs were lateral projections called left and right "pleural lobes," extending outward from a central "axial lobe." Contrary to popular belief, it is this longitudinal tripartite division into left and right pleural lobes and a central axial lobe that gives trilobites their name, ''not'' the latitudinal division into cephalon, thorax, and pygidium.
  
[[image:SamGonIII_3lobes.png|frame|left|The name "trilobite" (meaning "three-lobed") is not based on the body sections cephalon, thorax and pygidium, but rather on the three longitudinal lobes: a central axial lobe, and two symmetrical pleural lobes that flank the axis.]] [[image:SamGonIII_cepthopyg.png|frame|left|The trilobite body is divided into three major sections, a cephalon with eyes, mouthparts and sensory organs such as antennae, a thorax of multiple similar segments (that in some species allowed enrollment), and a pygidium, or tail section.]]
+
[[image:SamGonIII_3lobes.png|frame|left|The name "trilobite" (meaning "three-lobed") is based on its three longitudinal lobes: The left pleural lobe, the central axial lobe, and the right pleural lobe.]] [[image:SamGonIII_cepthopyg.png|frame|left|The trilobite body is divided into three major sections, a cephalon with eyes, mouthparts, and sensory organs such as antennae; a thorax of multiple similar segments (that in some species allowed the organism to curl up); and a pygidium, or tail section.]]
Although trilobites were only armored on top, they still had a fairly heavy [[exoskeleton]], composed of [[calcite]] and calcium phosphate minerals in a protein lattice of [[chitin]].  Unlike other groups of armored arthropods, which resorb most of their skeletal minerals prior to molting, a trilobite would cast off a fully mineralized moult.  Thus a single trilobite animal could potentially have left multiple well-mineralized skeletons behind — further enhancing the apparent abundance of trilobites in the fossil record.
 
During [[ecdysis|moulting]], the exoskeleton generally split between the head and thorax, which is why so many trilobite fossils are missing one or the other: many trilobite fossils are actually moulted exoskeletons rather than dead trilobites. In most groups there were two facial sutures on the cephalon to make shedding easier. The cheeks of the cephalon usually also supported a pair of crescent-shaped compound eyes, which were surprisingly advanced in some species. In fact, trilobites were the first animals to [[Evolution of the eye|evolve true eyes]], about 543 million years ago; the evolutionary appearance of eyes has been postulated as a trigger for the [[Cambrian Explosion]].
 
  
Some trilobites such as those of the order [[Lichida]] evolved elaborate spiny forms, from the [[Ordovician]] until the end of the [[Devonian]] period. Examples of these specimens have been found in the Hamar Laghdad formation of [[Alnif]] in [[Morocco]]. Collectors of this material should be aware of a serious counterfeiting and fakery problem with much of the Moroccan material that is offered commercially. Spectacular spined trilobites have also been found in western Russia; Oklahoma, USA; and Ontario, Canada. These spiny forms could possibly have been a defensive response to the evolutionary appearance of [[fish]].
+
Although trilobites were armored only on top, they still had a fairly heavy exoskeleton, composed of calcite and calcium phosphate minerals in a [[protein]] lattice of [[chitin]]. Unlike other groups of armored arthropods, which resorb most of their skeletal [[mineral]]s prior to molting, a trilobite would cast off a fully mineralized molt. Thus, a single trilobite animal could potentially have left multiple well-mineralized skeletons behind&mdash;further enhancing the apparent abundance of trilobites in the fossil record.  
  
[[Image:trilobite_3D.jpg|thumb|right]]According to ''[[New Scientist]]'' magazine (May 2005), "some... trilobites... had horns on their heads similar to those of modern [[beetles]]." Based on the size, location, and shape of the horns, Rob Knell, a biologist at [[Queen Mary, University of London]] and [[Richard Fortey]] of London's [[Natural History Museum]], concluded that the most likely use of the horns was combat for mates, making trilobites the earliest exemplars of this behavior. While this study only covered the [[raphiophorid]] family, the conclusions can be applied to other groups as well, such as the tridentate phacopide trilobite ''Walliserops trifurcatus''.
+
During [[ecdysis|molting]], the exoskeleton generally split between the head and thorax, which is why so many trilobite [[fossil]]s are missing one or the other: Many trilobite fossils are actually molted exoskeletons rather than dead trilobites. In most groups, there were two facial sutures on the cephalon to make shedding easier. The cheeks of the cephalon usually also supported a pair of crescent-shaped compound [[eye]]s, which were surprisingly advanced in some species. In fact, trilobites are considered to be the first animals to evolve true eyes, about 543 million years ago; the evolutionary appearance of eyes has been postulated as a trigger for the [[Cambrian|Cambrian Explosion]].
  
Trilobites range in length from one millimeter to 72 cm (1/25 inch to 28 inches), with a typical size range of two to seven centimetres (1 to 3½ inches). The world's largest trilobite, ''Isotelus rex'', was found in [[1998]] by Canadian scientists in Ordovician rocks on the shores of [[Hudson Bay]].
+
Some trilobites, such as those of the order Lichida, evolved elaborate spiny forms from the [[Ordovician]] period (488-444 mya) until the end of the [[Devonian]] period (416-359 mya). Examples of these specimens have been found in the Hamar Laghdad formation of Alnif in [[Morocco]]. Collectors of this material should be aware of a serious counterfeiting problem with much of the Moroccan material that is offered commercially. Spectacular spined trilobites have also been found in western Russia; Oklahoma, U.S.; and Ontario, Canada. These spiny forms could possibly have been a defensive response to the evolutionary appearance of [[fish]].
 +
 
 +
[[Image:trilobite_3D.jpg|thumb|right]]According to ''New Scientist'' magazine (May 2005), "some… trilobites… had horns on their heads similar to those of modern [[beetle]]s." Based on the size, location, and shape of the horns, Rob Knell, a biologist at Queen Mary, University of London and Richard Fortey of London's Natural History Museum, concluded that the most likely use of the horns was combat for mates, which, if true, would make trilobites the earliest exemplars of this behavior.
 +
 
 +
Trilobites range in length from one millimeter to 72 cm (1/25 inch to 28 inches), with a typical size range of two to seven centimeters (1 to 3½ inches). The world's largest trilobite, ''Isotelus rex,'' was found in 1998, by Canadian scientists in [[Ordovician]] rocks on the shores of Hudson Bay.
  
 
==Sensory organs==
 
==Sensory organs==
[[Image:Trilobite Metacryphaeus.jpg|thumb|The trilobite ''Metacryphaeus caffer'' from the Devonian of Bolivia]]
+
[[Image:Trilobite Metacryphaeus.jpg|thumb|The trilobite ''Metacryphaeus caffer'' from the Devonian period fossil beds of Bolivia]]
Many trilobites had eyes; they also had [[antenna (biology)|antenna]]e that perhaps were used for taste and smell. Some trilobites were blind, probably living too deep in the sea for light to reach them. Others, such as ''[[Phacops rana]]'', had eyes that were quite large.
+
Many trilobites had [[eye]]s, while some trilobites lacked eyes, probably living too deep in the sea for light to reach them. Others, such as ''hacops rana,'' had eyes that were quite large. Trilobites also had [[antenna (biology)|antenna]]e that perhaps were used for taste and smell.  
  
The [[eye]]s of trilobites were made of [[calcite]] ([[calcium carbonate]], CaCO<sub>3</sub>). Pure forms of calcite are transparent, and some trilobites used a single crystallographically oriented, clear calcite crystal to form each lens of each of their eyes. In this, they differ from most other arthropods, which have soft or chitin-supported eyes. The rigid calcite lenses of a trilobite eye would have been unable to [[accommodation (eye)|accommodate]] to a change of focus like the soft lens in a human eye would; however, in some trilobites the calcite formed an internal [[doublet (lens)|doublet]] structure, giving superb [[depth of field]] and minimal [[spherical aberration]], as rediscovered by Dutch physicist [[Christiaan Huygens]] many millions of years later. A living species with similar lenses is the [[brittle star]] ''[[Ophiocoma wendtii]]''.
+
The eyes of trilobites were made of calcite (calcium carbonate, CaCO<sub>3</sub>). Pure forms of calcite are transparent, and some trilobites used a single crystallographically oriented, clear calcite crystal to form the lens of each of their eyes. In this, they differ from most other [[arthropod]]s, which have soft or chitin-supported eyes. The rigid calcite lenses of a trilobite eye would have been unable to accommodate to a change of focus, like the soft lens in a [[human eye]] would. However, in some trilobites, the calcite formed an internal doublet structure, which in principle could have given a good depth of field with minimal spherical aberration. A living species with similar lenses is the brittle star ''Ophiocoma wendtii,'' an [[echinoderm]].
  
The trilobite eyes were typically [[compound eye|compound]], with each lens being an elongated prism. The number of lenses in such an eye varied, however: some trilobites had only one, and some had thousands of lenses in a single eye. In these compound eyes, the lenses were typically arranged hexagonally.  
+
The trilobite eyes were typically compound, with each lens being an elongated prism. The number of lenses in such an eye varied, however: Some trilobites had only one, and some had thousands of lenses in a single eye. In these compound eyes, the lenses were typically arranged hexagonally. Three different types of trilobite eyes have been identified: holochroal, schizochroal, and abthochroal.
  
[[Image:CyphaspisPlate.jpg|thumb|left|''Cyphaspis tafilalet'' - trilobites of the order Proetida]]
+
[[Image:CyphaspisPlate.jpg|thumb|left|''Cyphaspis tafilalet''—trilobites of the order Proetida]]
  
 
=== Holochroal eyes ===
 
=== Holochroal eyes ===
Holochroal eyes had a great number of (tiny) lenses (sometimes over 15,000), and are found in all orders of trilobite. These lenses were packed closely together (hexagonally) and touch each other. A single [[cornea|corneal membrane]] covered all lenses. These eyes had no sclera, the white layer covering the eyes of most modern arthropods.
+
Holochroal eyes had a great number of (tiny) lenses (sometimes over 15,000), and are found in all orders of trilobite. These lenses were packed closely together (hexagonally) and touch each other without being individually mounted and support in sclera, which would have been comparable to the white layer covering the eyes of most modern arthropods. A single corneal membrane covered all the lenses.  
  
 
=== Schizochroal eyes ===
 
=== Schizochroal eyes ===
Schizochroal eyes typically had fewer (and larger) lenses (to around 700), and are found only in [[Phacopida]]. The lenses were separate, with each lens having an individual cornea which extended into a rather large sclera.
+
Schizochroal eyes typically had fewer (and larger) lenses (to around 700), and are found only in the order Phacopida. The lenses were separate, with each lens having an individual [[cornea]] which extended into a rather large [[sclera]].
  
 
=== Abathochroal eyes ===
 
=== Abathochroal eyes ===
Abathochroal eyes had few (and small) lenses (to around 70), and are found only in [[agnostida|Cambrian Eodiscina]]. Each lens was separate and had an individual cornea. The sclera was separate from the cornea, and did not run as deep as the sclera in schizochroal eyes.
+
Abathochroal eyes had few (and small) lenses (to around 70), and are found only in [[Cambrian]] Eodiscina. Each lens was separate and had an individual cornea. The sclera was separate from the cornea, and did not run as deep as the sclera in schizochroal eyes.
  
 
<br style="clear:both;" />
 
<br style="clear:both;" />
  
 
==Development==
 
==Development==
An egg hatched to give a tiny larva called a ''protaspid'', in which all segments are fused into a single carapace. Subsequent thoracic segments were added just ahead of the pygidium ("pygidial release") in successive molts during an intermediate stage called ''meraspid'', until finally the adult number of segments was reached, at which point the animal is called a ''holaspid''. In many species, molting continued during the holaspid stage with no changes in segment number. Trilobite larvae are reasonably well known and provide an important aid in evaluating high-level phylogenetic relationships among trilobites.
+
From the [[fossil]] record, the following trilobite [[life cycle]] has been reconstructed. From a hatched egg came a tiny larva called a "protaspid" in which all segments were fused into a single [[carapace]]. Subsequently a fold developed in the carapace and thoracic segments were added in successive molts during an intermediate stage called "meraspid." Finally, the adult number of segments was reached, at which point the animal is called a "holaspid."
 +
 
 +
In many species, molting continued during the holaspid stage with no changes in segment number. Trilobite larvae are reasonably well known and provide an important aid in evaluating high-level phylogenetic relationships among trilobites.
  
 
== Terminology ==
 
== Terminology ==
When describing differences between different taxa of trilobites, the presence, size, and shape of the cephalic features above are often mentioned.  
+
When describing differences between different taxa of trilobites, the presence, size, and shape of the cephalic features are often mentioned.  
  
 
Figure 1 shows gross morphology of the cephalon. The cheeks (genae) are the pleural lobes on each side of the axial feature, the glabella. When trilobites molted or died, the librigenae (the so-called "free cheeks") often separated, leaving the cranidium (glabella + fixigenae) exposed. Figure 2 shows a more detailed view of the cephalon.
 
Figure 1 shows gross morphology of the cephalon. The cheeks (genae) are the pleural lobes on each side of the axial feature, the glabella. When trilobites molted or died, the librigenae (the so-called "free cheeks") often separated, leaving the cranidium (glabella + fixigenae) exposed. Figure 2 shows a more detailed view of the cephalon.
Line 71: Line 78:
 
{|border="0" cellpadding="5" cellspacing="0" align="center"
 
{|border="0" cellpadding="5" cellspacing="0" align="center"
 
|-
 
|-
|align="center" valign="top" |[[image:SamGonIII_cranidium.png|frame|none|Fig. 1 - Morphology of the cephalon]]
+
|align="center" valign="top" |[[image:SamGonIII_cranidium.png|frame|none|Fig. 1-Morphology of the cephalon]]
|align="center" valign="top" |[[image:SamGonIII_cephareas.png|frame|none|Fig. 2 - Detailed morphology of the cephalon]]
+
|align="center" valign="top" |[[image:SamGonIII_cephareas.png|frame|none|Fig. 2-Detailed morphology of the cephalon]]
 
|}
 
|}
  
==Origins==
+
==Origins and extinction==
Based on morphological similarities, it is possible that the trilobites have their ancestors in arthropod-like creatures such as [[Spriggina]], [[Parvancorina]], and other '''trilobitomorphs''' of the [[Ediacaran]] period of the [[Precambrian]]. There are many morphological similarities between early trilobites and other [[Cambrian]] arthropods known from the [[Burgess Shale]] and other [[fossil]]iferous locations. These are investigated further here: [http://www.trilobites.info/triloclass.htm]
+
Based on morphological similarities, it is possible that the trilobites have their ancestors in arthropod-like creatures such as Spriggina, Parvancorina, and other '''trilobitomorphs''' of the Ediacaran period of the [[Precambrian]]. There are many morphological similarities between early trilobites and other [[Cambrian]] arthropods known from the Burgess Shale and other [[fossil]]iferous locations. It is reasonable to assume that the trilobites share a common ancestor with these other arthropods prior to the Ediacaran-Cambrian boundary.
It is reasonable to assume that the trilobites share a common ancestor with these other arthropods prior to the Ediacaran-Cambrian boundary.
 
  
==Extinction==
+
[[Image:Trilobite2.jpg|left|thumb|''Asaphus kowalewskii'', a trilobite from Russia]]
[[Image:Trilobite2.jpg|left|thumb|''[[Asaphus kowalewskii]]'', a trilobite from Russia]]
+
The exact reason for the [[extinction]] of the trilobites is not clear, although it would seem to be no coincidence that their numbers began to decrease with the arrival of the first [[shark]]s and other early [[fish]] in the [[Silurian]] and [[Devonian]] periods with their strong, hinged jaw. Trilobites may have provided a rich source of food for these new arrivals.
The exact reason for the extinction of the trilobites is not clear, although it would seem to be no coincidence that their numbers began to decrease with the arrival of the first sharks and other early fish in the [[Silurian]] and [[Devonian]] periods with their strong, hinged jaw. Trilobites may have provided a rich source of food for these new arrivals.
 
  
Additionally, their relatively low numbers and diversity at the end of the Permian no doubt contributed to their extinction during that great [[Permian extinction|mass extinction event]]. Foreshadowing this, the [[Ordovician-Silurian extinction events|Ordovician mass extinction]], though somewhat less substantial than the Permian one, also seems to have significantly narrowed trilobite diversity.
+
Additionally, their relatively low numbers and diversity at the end of the Permian no doubt contributed to their extinction during that great [[mass extinction#Permian extinction|mass extinction event]]. Foreshadowing this, the [[mass extinction#Ordovician-Silurian extinction events|Ordovician mass extinction]], though somewhat less substantial than the Permian one, also seems to have significantly reduced trilobite diversity.
  
The closest extant relatives of trilobites may be the [[Cephalocarida|cephalocarids]].(Lambert, 63)
+
The closest extant (living) relatives of trilobites may be the [[cephalocarids]], minute marine [[crustacean]]s (Lambert 1985) and the horseshoe crabs.
  
 
==Fossil distribution==
 
==Fossil distribution==
Line 91: Line 96:
 
[[Image:Cruziana2.jpg|thumb|''Cruziana'', fossil track of Trilobites]]
 
[[Image:Cruziana2.jpg|thumb|''Cruziana'', fossil track of Trilobites]]
  
Trilobites appear to have been exclusively marine organisms, since the fossilized remains of trilobites are always found in rocks containing fossils of other salt-water animals such as brachiopods, crinoids, and corals. Within the marine paleoenvironment, trilobites were found in a broad range from extremely shallow water to very deep water. The tracks left behind by trilobites crawling on the sea floor are occasionally preserved as trace fossils. Trilobites, like brachiopods, crinoids, and corals, are found on all modern continents, and occupied every ancient ocean from which fossils have been collected.
+
Trilobites appear to have been exclusively marine organisms, since the fossilized remains of trilobites are always found in rocks containing fossils of other salt-water animals, such as [[brachiopod]]s, [[crinoid]]s, and [[coral]]s. Within the marine paleoenvironment, trilobites were found in a broad range, from extremely shallow water to very deep water. The tracks left behind by trilobites crawling on the sea floor are occasionally preserved as trace fossils. Trilobites, like brachiopods, crinoids, and corals, are found on all modern continents, and occupied every ancient ocean from which fossils have been collected.
  
 
[[Image:Trilobite.jpg|thumb|left|Trilobite fossils]]
 
[[Image:Trilobite.jpg|thumb|left|Trilobite fossils]]
Trilobite fossils are found worldwide, with many thousands of known species. Because they evolved rapidly, trilobites serve as excellent [[index fossil]]s, enabling geologists to date the age of the rocks in which they are found. They were among the first fossils to attract widespread attention, and new species are being discovered every year. Some [[Indigenous peoples of the Americas|Native Americans]], recognizing that trilobites were water creatures, had a name for them which means "little water bug in the rocks".
+
Trilobite fossils are found worldwide, with many thousands of known species. Because they evolved rapidly, trilobites serve as excellent index fossils, enabling geologists to date the age of the rocks in which they are found. They were among the first fossils to attract widespread attention, and new species are being discovered every year. Some Native Americans, recognizing that trilobites were water creatures, had a name for them which means "little water bug in the rocks."
  
A famous location for trilobite fossils in the [[United Kingdom]] is Wren's Nest, [[Dudley]] in the [[West Midlands (county)|West Midlands]], where ''Calymene blumenbachi'' is found in the [[Silurian]] [[Wenlock Group]] Limestone formation. This trilobite is featured on the town's [[coat of arms]] and was named the "Dudley locust" or "Dudley bug" by quarrymen who once worked many of the now abandoned [[limestone]] quarries. Other trilobites found there include ''Dalmanites'', ''Trimerus'' and ''Bumastus''.
+
A famous location for trilobite fossils in the [[United Kingdom]] is Wren's Nest, Dudley in the West Midlands, where ''Calymene blumenbachi'' is found in the [[Silurian]] Wenlock Group Limestone formation. This trilobite is featured on the town's coat of arms and was named the "Dudley locust" or "Dudley bug" by quarrymen who once worked many of the now abandoned [[limestone]] quarries. Other trilobites found there include ''Dalmanites,'' ''Trimerus,'' and ''Bumastus.''
  
Spectacular trilobite fossils, showing soft body parts like legs, gills and antennae, have been found in British Columbia ([[Burgess Shale]] Cambrian fossils, and similar localities in the Canadian Rockies); New York State (Odovician Walcott-Rust Quarry, near Utica, N.Y., and the Beecher Trilobite Beds, near Rome, N.Y.), in China (Burgess Shale-like Lower Cambrian trilobites in the [[Maotianshan shales]] near Chengjiang), Germany (the Devonian [[Hunsrück Slates]] near Bundenbach, Germany) and, much more rarely, in trilobite-bearing strata in Utah and Ontario.
+
Spectacular trilobite fossils, showing soft body parts like legs, gills, and antennae, have been found in British Columbia (Burgess Shale Cambrian fossils, and similar localities in the Canadian Rockies); New York State (Odovician Walcott-Rust Quarry, near Utica, N.Y., and the Beecher Trilobite Beds, near Rome, N.Y.), in China (Burgess Shale-like Lower Cambrian trilobites in the Maotianshan shales near Chengjiang), Germany (the Devonian Hunsrück Slates near Bundenbach, Germany) and, much more rarely, in trilobite-bearing strata in Utah and Ontario.
  
Trilobites are collected commercially in Russia (especially in the St. Petersburg area), Germany, Morocco's Atlas Mountains, (where a burgeoning trade in faked trilobites is also under way), Utah, Ohio, British Columbia, and in other parts of Canada.
+
Trilobites are collected commercially in Russia (especially in the St. Petersburg area), Germany, Morocco's Atlas Mountains, Utah, Ohio, British Columbia, and in other parts of Canada.
  
 
== References ==
 
== References ==
* ''Trilobite!'' - Richard Fortey (ISBN 0-00-257012-2)
+
* Chaisson, E. J. 2005. [http://www.tufts.edu/as/wright_center/cosmic_evolution/docs/text/text_bio_4.html Recent fossils]]. Cosmic Evolution Website, Tufts University. Retrieved December 20, 2006.
*David Lambert and the Diagram Group. ''The Field Guide to Prehistoric Life.'' New York: Facts on File Publications, 1985. ISBN 0-8160-1125-7  
+
* Fortey, R. 2000. ''Trilobite! Eyewitness to Evolution.'' London: Harper Collins. ISBN 0-00-257012-2
* Riccardo Levi-Setti. ''Trilobites''. University of Chicago Press, 1993.
+
* Knill, R. and R. Fortney. [http://www.newscientist.com/channel/life/mg18625015.100/ Earliest combatants in sexual contests revealed]  in ''New Scientist'' 2501 (May 2005):16. Retrieved December 21, 2006.
* [http://www.trilobites.info/ A Guide to the Orders of Trilobite] by Sam Gon III - an excellent, well-researched site with information covering trilobites from all angles. Includes many line drawings and photographs.
+
* Lambert, D., and the Diagram Group. 1985. ''The Field Guide to Prehistoric Life.'' New York: Facts on File Publications. ISBN 0-8160-1125-7  
*[http://www.newscientist.com/channel/life/mg18625015.100/ Earliest combatants in sexual contests revealed] from "New Scientist" magazine.
+
* Levi-Setti, R. 1993. ''Trilobites.'' University of Chicago Press. ISBN 0226474526
*[http://www.fossilhut.com/DIRT/rolf_ludvigsen/TPintroduction.htm  The Trilobite papers]
 
 
 
== See also ==
 
{{commons2|Trilobita|Trilobite}}
 
{{Wikispecies|Trilobita}}
 
* [[Prehistoric life]]
 
  
 
==External links==  
 
==External links==  
*[http://www.westernta.com/ Western Trilobite Association]
+
All links retrieved May 2, 2023.
* [http://us.geocities.com/trilobitologist/trilobites.html Kevin's Trilobite Gallery - a collection of photographs of trilobite fossils]
 
* [http://mdbourrie.googlepages.com/trilobites Mark Bourrie's trilobite collection - another collection of photographs of trilobite fossils]
 
* [http://www.trilobites.info/ A Guide to the Orders of Trilobites]
 
  
 +
* [http://www.trilobites.info/ A Guide to the Orders of Trilobites].
  
 +
[[Category:Life sciences]][[Category:Animals]][[Category:Invertebrates]][[Category:Arthropods]]
 +
[[Category:Paleontology]]
 
{{credit|89005823}}
 
{{credit|89005823}}
[[Category:Life sciences]]
 

Latest revision as of 17:20, 2 May 2023

The Trilobites' Span of Life (ca. 540 - 251 mya)
Paleozoic era (542 - 251 mya)
Cambrian Ordovician Silurian Devonian Carboniferous Permian
Trilobite
Fossil range: Cambrian-Permian
Asaphiscus wheeleri
Asaphiscus wheeleri, a trilobite
from Cambrian-age shale in Utah
Scientific classification
Kingdom: Animalia
Phylum: Arthropoda
Class: Trilobita
Walch, 1771
Orders
  • Agnostida
  • Redlichiida
  • Corynexochida
  • Lichida
  • Phacopida
  • Proetida
  • Asaphida
  • Harpetida
  • Ptychopariida
    • doubtful order
  • Nektaspida

Trilobites are hard-shelled, segmented members of the phylum Arthropoda and the class Trilobita that appear in the fossil record for almost 300 million years—from about 540 to 251 million years ago (mya). They existed throughout almost all of the Paleozoic era, flourishing in the earlier part of it and slowly declining in the later part, finally going extinct in the Permian-Triassic extinction event about 251 mya.

The most common trilobites were about 2-7 cm (1-3.5 in) in length, but over their long history they ranged in size from 1 mm-72 cm (.04 in-28 in) and exhibited so much variation on their basic body plan that they are classified into nine (or possibly ten) orders with more than 15,000 species. The smallest species are presumed to have been part of the free floating plankton, while the more common, mid-sized species probably walked along the sea floor filtering mud to obtain food, and the larger varieties may have been swimming predators. The trilobites are considered to be the first animals to have evolved true eyes.

Trilobites are thought to represent an early stage in the step-by-step development of life on Earth, but there remain alternative views about their precise cladistic connection to current species. Chaisson (2005) notes, for example, "though all trilobites have been extinct for the past 200 million years, paleobiologists are reasonably sure that some version of them gave rise to most of today’s animals." Others would assert that the trilobite line itself left no descendants, but that ancestors of the trilobites would also have given rise to species that became today's horseshoe crabs.

Physical description

The bodies of trilobites are divided into three parts or tagmata: A cephalon (head) comprising the two pre-oral and first four post-oral segments completely fused together; a thorax comprising several freely articulating segments; and a pygidium (tail) comprising the last few segments fused together with the telson (last division of the body). The pygidia are still fairly rudimentary in the most primitive trilobites. The thorax is fairly flexible—fossilized trilobites are often found curled up like modern woodlice, perhaps for protection.

Trilobites had a single pair of pre-oral antennae and otherwise undifferentiated biramous (double-branched) limbs. Each exopodite (walking leg) had six segments, analogous to those of other early arthropods. The first segment of each walking leg also bore a feather-like epipodite, or gill branch, which is considered to have been used for respiration and swimming. "Above" the limbs were lateral projections called left and right "pleural lobes," extending outward from a central "axial lobe." Contrary to popular belief, it is this longitudinal tripartite division into left and right pleural lobes and a central axial lobe that gives trilobites their name, not the latitudinal division into cephalon, thorax, and pygidium.

The name "trilobite" (meaning "three-lobed") is based on its three longitudinal lobes: The left pleural lobe, the central axial lobe, and the right pleural lobe.
The trilobite body is divided into three major sections, a cephalon with eyes, mouthparts, and sensory organs such as antennae; a thorax of multiple similar segments (that in some species allowed the organism to curl up); and a pygidium, or tail section.

Although trilobites were armored only on top, they still had a fairly heavy exoskeleton, composed of calcite and calcium phosphate minerals in a protein lattice of chitin. Unlike other groups of armored arthropods, which resorb most of their skeletal minerals prior to molting, a trilobite would cast off a fully mineralized molt. Thus, a single trilobite animal could potentially have left multiple well-mineralized skeletons behind—further enhancing the apparent abundance of trilobites in the fossil record.

During molting, the exoskeleton generally split between the head and thorax, which is why so many trilobite fossils are missing one or the other: Many trilobite fossils are actually molted exoskeletons rather than dead trilobites. In most groups, there were two facial sutures on the cephalon to make shedding easier. The cheeks of the cephalon usually also supported a pair of crescent-shaped compound eyes, which were surprisingly advanced in some species. In fact, trilobites are considered to be the first animals to evolve true eyes, about 543 million years ago; the evolutionary appearance of eyes has been postulated as a trigger for the Cambrian Explosion.

Some trilobites, such as those of the order Lichida, evolved elaborate spiny forms from the Ordovician period (488-444 mya) until the end of the Devonian period (416-359 mya). Examples of these specimens have been found in the Hamar Laghdad formation of Alnif in Morocco. Collectors of this material should be aware of a serious counterfeiting problem with much of the Moroccan material that is offered commercially. Spectacular spined trilobites have also been found in western Russia; Oklahoma, U.S.; and Ontario, Canada. These spiny forms could possibly have been a defensive response to the evolutionary appearance of fish.

Trilobite 3D.jpg

According to New Scientist magazine (May 2005), "some… trilobites… had horns on their heads similar to those of modern beetles." Based on the size, location, and shape of the horns, Rob Knell, a biologist at Queen Mary, University of London and Richard Fortey of London's Natural History Museum, concluded that the most likely use of the horns was combat for mates, which, if true, would make trilobites the earliest exemplars of this behavior.

Trilobites range in length from one millimeter to 72 cm (1/25 inch to 28 inches), with a typical size range of two to seven centimeters (1 to 3½ inches). The world's largest trilobite, Isotelus rex, was found in 1998, by Canadian scientists in Ordovician rocks on the shores of Hudson Bay.

Sensory organs

The trilobite Metacryphaeus caffer from the Devonian period fossil beds of Bolivia

Many trilobites had eyes, while some trilobites lacked eyes, probably living too deep in the sea for light to reach them. Others, such as hacops rana, had eyes that were quite large. Trilobites also had antennae that perhaps were used for taste and smell.

The eyes of trilobites were made of calcite (calcium carbonate, CaCO3). Pure forms of calcite are transparent, and some trilobites used a single crystallographically oriented, clear calcite crystal to form the lens of each of their eyes. In this, they differ from most other arthropods, which have soft or chitin-supported eyes. The rigid calcite lenses of a trilobite eye would have been unable to accommodate to a change of focus, like the soft lens in a human eye would. However, in some trilobites, the calcite formed an internal doublet structure, which in principle could have given a good depth of field with minimal spherical aberration. A living species with similar lenses is the brittle star Ophiocoma wendtii, an echinoderm.

The trilobite eyes were typically compound, with each lens being an elongated prism. The number of lenses in such an eye varied, however: Some trilobites had only one, and some had thousands of lenses in a single eye. In these compound eyes, the lenses were typically arranged hexagonally. Three different types of trilobite eyes have been identified: holochroal, schizochroal, and abthochroal.

Cyphaspis tafilalet—trilobites of the order Proetida

Holochroal eyes

Holochroal eyes had a great number of (tiny) lenses (sometimes over 15,000), and are found in all orders of trilobite. These lenses were packed closely together (hexagonally) and touch each other without being individually mounted and support in sclera, which would have been comparable to the white layer covering the eyes of most modern arthropods. A single corneal membrane covered all the lenses.

Schizochroal eyes

Schizochroal eyes typically had fewer (and larger) lenses (to around 700), and are found only in the order Phacopida. The lenses were separate, with each lens having an individual cornea which extended into a rather large sclera.

Abathochroal eyes

Abathochroal eyes had few (and small) lenses (to around 70), and are found only in Cambrian Eodiscina. Each lens was separate and had an individual cornea. The sclera was separate from the cornea, and did not run as deep as the sclera in schizochroal eyes.


Development

From the fossil record, the following trilobite life cycle has been reconstructed. From a hatched egg came a tiny larva called a "protaspid" in which all segments were fused into a single carapace. Subsequently a fold developed in the carapace and thoracic segments were added in successive molts during an intermediate stage called "meraspid." Finally, the adult number of segments was reached, at which point the animal is called a "holaspid."

In many species, molting continued during the holaspid stage with no changes in segment number. Trilobite larvae are reasonably well known and provide an important aid in evaluating high-level phylogenetic relationships among trilobites.

Terminology

When describing differences between different taxa of trilobites, the presence, size, and shape of the cephalic features are often mentioned.

Figure 1 shows gross morphology of the cephalon. The cheeks (genae) are the pleural lobes on each side of the axial feature, the glabella. When trilobites molted or died, the librigenae (the so-called "free cheeks") often separated, leaving the cranidium (glabella + fixigenae) exposed. Figure 2 shows a more detailed view of the cephalon.

Fig. 1-Morphology of the cephalon
Fig. 2-Detailed morphology of the cephalon

Origins and extinction

Based on morphological similarities, it is possible that the trilobites have their ancestors in arthropod-like creatures such as Spriggina, Parvancorina, and other trilobitomorphs of the Ediacaran period of the Precambrian. There are many morphological similarities between early trilobites and other Cambrian arthropods known from the Burgess Shale and other fossiliferous locations. It is reasonable to assume that the trilobites share a common ancestor with these other arthropods prior to the Ediacaran-Cambrian boundary.

Asaphus kowalewskii, a trilobite from Russia

The exact reason for the extinction of the trilobites is not clear, although it would seem to be no coincidence that their numbers began to decrease with the arrival of the first sharks and other early fish in the Silurian and Devonian periods with their strong, hinged jaw. Trilobites may have provided a rich source of food for these new arrivals.

Additionally, their relatively low numbers and diversity at the end of the Permian no doubt contributed to their extinction during that great mass extinction event. Foreshadowing this, the Ordovician mass extinction, though somewhat less substantial than the Permian one, also seems to have significantly reduced trilobite diversity.

The closest extant (living) relatives of trilobites may be the cephalocarids, minute marine crustaceans (Lambert 1985) and the horseshoe crabs.

Fossil distribution

Fossil trilobite Ductina vietnamica from the Devonian of China
Cruziana, fossil track of Trilobites

Trilobites appear to have been exclusively marine organisms, since the fossilized remains of trilobites are always found in rocks containing fossils of other salt-water animals, such as brachiopods, crinoids, and corals. Within the marine paleoenvironment, trilobites were found in a broad range, from extremely shallow water to very deep water. The tracks left behind by trilobites crawling on the sea floor are occasionally preserved as trace fossils. Trilobites, like brachiopods, crinoids, and corals, are found on all modern continents, and occupied every ancient ocean from which fossils have been collected.

Trilobite fossils

Trilobite fossils are found worldwide, with many thousands of known species. Because they evolved rapidly, trilobites serve as excellent index fossils, enabling geologists to date the age of the rocks in which they are found. They were among the first fossils to attract widespread attention, and new species are being discovered every year. Some Native Americans, recognizing that trilobites were water creatures, had a name for them which means "little water bug in the rocks."

A famous location for trilobite fossils in the United Kingdom is Wren's Nest, Dudley in the West Midlands, where Calymene blumenbachi is found in the Silurian Wenlock Group Limestone formation. This trilobite is featured on the town's coat of arms and was named the "Dudley locust" or "Dudley bug" by quarrymen who once worked many of the now abandoned limestone quarries. Other trilobites found there include Dalmanites, Trimerus, and Bumastus.

Spectacular trilobite fossils, showing soft body parts like legs, gills, and antennae, have been found in British Columbia (Burgess Shale Cambrian fossils, and similar localities in the Canadian Rockies); New York State (Odovician Walcott-Rust Quarry, near Utica, N.Y., and the Beecher Trilobite Beds, near Rome, N.Y.), in China (Burgess Shale-like Lower Cambrian trilobites in the Maotianshan shales near Chengjiang), Germany (the Devonian Hunsrück Slates near Bundenbach, Germany) and, much more rarely, in trilobite-bearing strata in Utah and Ontario.

Trilobites are collected commercially in Russia (especially in the St. Petersburg area), Germany, Morocco's Atlas Mountains, Utah, Ohio, British Columbia, and in other parts of Canada.

References
ISBN links support NWE through referral fees

  • Chaisson, E. J. 2005. Recent fossils]. Cosmic Evolution Website, Tufts University. Retrieved December 20, 2006.
  • Fortey, R. 2000. Trilobite! Eyewitness to Evolution. London: Harper Collins. ISBN 0-00-257012-2
  • Knill, R. and R. Fortney. Earliest combatants in sexual contests revealed in New Scientist 2501 (May 2005):16. Retrieved December 21, 2006.
  • Lambert, D., and the Diagram Group. 1985. The Field Guide to Prehistoric Life. New York: Facts on File Publications. ISBN 0-8160-1125-7
  • Levi-Setti, R. 1993. Trilobites. University of Chicago Press. ISBN 0226474526

External links

All links retrieved May 2, 2023.

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.