Difference between revisions of "Plankton" - New World Encyclopedia

From New World Encyclopedia
(Added article from Wikipedia)
 
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Note: This is only a rough draft, with notes. Please do not edit this article until the final draft is complete — i.e., when this notice is removed. You may add comments on what you would like to see included in the discussion area. [[User:Rick Swarts|Rick Swarts]] 23:18, 3 April 2006 (UTC)
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'''Steve, I added the articles from phytoplankton and bacterioplankton from Wikipedia. This is because in other articles, we often cite phytoplankton and zooplankton, and if they are a separate section, I can link right to those sections. But there was not any Wikipedia article on zooplankton, so please author a paragraph on them in the relevant section. Because I simply cut and pasted from the phytoplankton and bacterioplankton articles, there may be some overlap with what is already in the article. Thanks.''' [[User:Rick Swarts|Rick Swarts]] 21:41, 30 May 2006 (UTC)
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[[Image:plankton.jpg|thumb|right|250px|Photomontage of plankton organisms]]
 
[[Image:plankton.jpg|thumb|right|250px|Photomontage of plankton organisms]]
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[[Image:Amphipodredkils.jpg|thumb|right|200px|An [[amphipoda|amphipod]]]]
 
[[Image:Amphipodredkils.jpg|thumb|right|200px|An [[amphipoda|amphipod]]]]
  
The name '''plankton''' is derived from the [[Greek language|Greek]] term ''πλαγκτον'', meaning "wanderer" or "drifter". While some forms of plankton are capable of independent movement and can swim up to several hundreds of [[metre]]s vertically in a single [[day]] (a behavior called [[diel]] vertical migration), their horizontal position is primarily determined by [[ocean current|currents]] in the body of water they inhabit. By definition, organisms classified as "plankton" are unable to resist ocean currents.  This is in contrast to '''[[nekton]]''' organisms that can swim against the ambient flow of the water environment and control their horizontal position (e.g. [[squid]], [[fish]], [[krill]] and [[marine mammal]]s).
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The name '''plankton''' is derived from the [[Greek language|Greek]] term ''πλανκτον'', meaning "wanderer" or "drifter". While some forms of plankton are capable of independent movement and can swim up to several hundreds of [[metre]]s vertically in a single [[day]] (a behavior called [[diel]] vertical migration), their horizontal position is primarily determined by [[ocean current|currents]] in the body of water they inhabit. By definition, organisms classified as "plankton" are unable to resist ocean currents.  This is in contrast to '''[[nekton]]''' organisms that can swim against the ambient flow of the water environment and control their position (e.g. [[squid]], [[fish]], [[krill]] and [[marine mammal]]s).
  
 
[[Image:Diatoms through the microscope.jpg|thumb|left|200px|Some marine [[diatom]]s - a key [[phytoplankton]] group]]
 
[[Image:Diatoms through the microscope.jpg|thumb|left|200px|Some marine [[diatom]]s - a key [[phytoplankton]] group]]
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This scheme divides the plankton community into broad '''producer''', '''consumer''' and '''recycler''' groups.  In reality, even the trophic level of some plankton is not straightforward.  For example, although most dinoflagellates are either photosynthetic producers or heterotrophic consumers, many species are [[mixotrophic]] depending upon their circumstances.
 
This scheme divides the plankton community into broad '''producer''', '''consumer''' and '''recycler''' groups.  In reality, even the trophic level of some plankton is not straightforward.  For example, although most dinoflagellates are either photosynthetic producers or heterotrophic consumers, many species are [[mixotrophic]] depending upon their circumstances.
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 +
==Phytoplankton==
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[[image:phytopla.gif|thumb|Diagrams of some typical phytoplankton]]
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'''[[Phytoplankton]]''' refers to the [[autotroph|autotrophic]] component of the [[plankton]] that drifts in the water column. The name comes from the [[Greek language|Greek]] terms, ''phyton'' or "[[plant]]" and <math>\pi\lambda\alpha\gamma\kappa\tau\nu</math>, meaning "wanderer" or "drifter".  Most phytoplankton are too small to be individually seen with the unaided eye.  However, when present in high numbers, their presence may appear as discoloration of the water (the color of which may vary with the phytoplankton present).
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Phytoplankton, like plants, obtain energy through a process called [[photosynthesis]], and so must live in the well-lit surface layer (termed the [[euphotic zone]]) of an [[ocean]], [[sea]], or [[lake]]. Through photosynthesis, phytoplankton (and [[terrestrial]] plants) are responsible for much of the [[oxygen]] present in the [[Earth's atmosphere]].  Their cumulative energy fixation in carbon compounds ([[primary production]]) is the basis for the vast majority of oceanic and some freshwater [[food chain]]s ([[chemosynthesis]] is a notable exception). As a side note, one of the more remarkable food-chains in the ocean&mdash;remarkable because of the small number of links&mdash;is that of phytoplankton fed on by [[krill]] (a type of shrimp) fed on by [[baleen]] [[whale]]s.
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While almost all phytoplankton species are obligate photoautotrophs, there are some that are [[mixotrophic]] and other, non-pigmented species that are actually [[heterotroph|heterotrophic]] (the latter are often viewed as [[zooplankton]]).  Of these, the best known are [[dinoflagellate]] [[genus|genera]] such as ''[[Noctiluca]]'' and ''[[Dinophyceae|Dinophysis]]'', that obtain organic carbon by [[ingestion|ingesting]] other organisms or [[detritus (biology)|detrital]] material.
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 +
In terms of numbers, the most important groups of phytoplankton include the [[diatom]]s, [[cyanobacteria]] and [[dinoflagellate]]s, although many other groups of [[alga]]e are represented.  One group, the [[coccolithophore|coccolithophorids]], is responsible (in part) for the release of significant amounts of [[dimethyl sulfide]] (DMS) into the [[Earth's atmosphere|atmosphere]].  DMS is converted to sulfate and these sulfate molecules act as [[cloud condensation nuclei]], increasing general cloud cover.
 +
 +
Phytoplankton, like other plants, obtain energy through a process called [[photosynthesis]] and so must live in the well-lit surface layer of an ocean, sea or lake. Through photosynthesis phytoplankton produce approximately 98% of atmospheric oxygen.
 +
 +
 +
 +
==Zooplankton==
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needs some elaboration
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==Bacterioplankton==
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'''Bacterioplankton''' refers to the [[bacterium|bacteria]]l component of the [[plankton]] that drifts in the water column. The name comes from the [[Greek language|Greek]] term, ''πλαγκτον'', meaning "wanderer" or "drifter", and ''bacterium'', a word coined in the [[19th century]] by [[Christian Gottfried Ehrenberg]]. They are found in both seawater and freshwater.
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 +
Most bacterioplankton (for instance, ''Bacillus'' and ''Nitrosomonas'') obtain their energy through [[decomposition]] of other organisms, which largely renders them dependent on the [[phytoplankton]] for the production of dissolved organic matter as their main food source. A few species of bacterioplankton are capable of [[photosynthesis]] and [[chemosynthesis]]. Bacterio- and phytoplankton can regulate each others' numbers through mutual dependence and competition for resources such as [[phosphorus]]. They are preyed upon by [[protozoa]] and some [[cladocera]], as well as [[phage]]s.
 +
 +
  
 
==Size groups==
 
==Size groups==
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*Macroplankton, 2&times;10<sup>-2</sup>&rarr;2&times;10<sup>-1</sup> m (2-20 cm)
 
*Macroplankton, 2&times;10<sup>-2</sup>&rarr;2&times;10<sup>-1</sup> m (2-20 cm)
 
*Mesoplankton, 2&times;10<sup>-4</sup>&rarr;2&times;10<sup>-2</sup> m (0.2 mm-2 cm)
 
*Mesoplankton, 2&times;10<sup>-4</sup>&rarr;2&times;10<sup>-2</sup> m (0.2 mm-2 cm)
*Microplankton, 2&times;10<sup>-5</sup>&rarr;2&times;10<sup>-4</sup> m (20-200 &mu;m)
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*Microplankton, 2&times;10<sup>-5</sup>&rarr;2&times;10<sup>-4</sup> m (20-200 µm)
*Nanoplankton, 2&times;10<sup>-6</sup>&rarr;2&times;10<sup>-5</sup> m (2-20 &mu;m)
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*Nanoplankton, 2&times;10<sup>-6</sup>&rarr;2&times;10<sup>-5</sup> m (2-20 µm)
*Picoplankton, 2&times;10<sup>-7</sup>&rarr;2&times;10<sup>-6</sup> m (0.2-2 &mu;m), mostly [[bacterium|bacteria]]
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*Picoplankton, 2&times;10<sup>-7</sup>&rarr;2&times;10<sup>-6</sup> m (0.2-2 µm), mostly [[bacterium|bacteria]]
*Femtoplankton, &lt; 2&times;10<sup>-7</sup> m, (&lt; 0.2 &mu;m), consisting of marine [[virus]]es
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*Femtoplankton, &lt; 2&times;10<sup>-7</sup> m, (&lt; 0.2 µm), consisting of marine [[virus]]es
  
 
However, some of these terms may be used with very different boundaries, especially on the larger end of the scale.  The existence and importance of nano- and even smaller plankton was only discovered during the [[1980]]s, but they are thought to make up the largest proportion of all plankton in number and diversity.
 
However, some of these terms may be used with very different boundaries, especially on the larger end of the scale.  The existence and importance of nano- and even smaller plankton was only discovered during the [[1980]]s, but they are thought to make up the largest proportion of all plankton in number and diversity.
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A secondary source of variability is that of nutrient availability.  Although large areas of the [[tropics|tropical]] and [[sub-tropical]] oceans have abundant light, they experience relatively low primary production because of the poor availability of nutrients such as [[nitrate]], [[phosphate]] and [[silicate]].  This is a product of large-scale [[ocean current|ocean circulation]] and [[stratification]] of the water column.  In such regions, primary production, still usually occurs at greater depth, although at a reduced level (because of reduced light).
 
A secondary source of variability is that of nutrient availability.  Although large areas of the [[tropics|tropical]] and [[sub-tropical]] oceans have abundant light, they experience relatively low primary production because of the poor availability of nutrients such as [[nitrate]], [[phosphate]] and [[silicate]].  This is a product of large-scale [[ocean current|ocean circulation]] and [[stratification]] of the water column.  In such regions, primary production, still usually occurs at greater depth, although at a reduced level (because of reduced light).
  
Studies have shown that the mineral iron (but only in the proper amounts) leads to increased blooms of many (though not all) kinds of phytoplankton. Iron is primarily made available to oceanic phytoplankton through the deposition of atmospheric dust on the sea surface. Oceanic areas adjacent to arid parts of continents thus typically have abundant phytoplankton (e.g., the western Atlantic ocean, where trade winds bring dust from the Sahara Desert in north Africa). It seems a paradox that arid land areas may actually contribute to increased plant life proliferation in the world's oceans. It has been theorized (but never actually attempted) that large-scale 'seeding' of the world's oceans with iron would generate such massive blooms of phytoplankton so as to draw enough carbon dioxide out of the atmosphere to counteract the Greenhouse Effect (or global warming).
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Studies have shown{{citation needed}} that the mineral iron (but only in the proper amounts) leads to increased blooms of many (though not all) kinds of phytoplankton. Iron is primarily made available to oceanic phytoplankton through the deposition of atmospheric dust on the sea surface. Oceanic areas adjacent to arid parts of continents thus typically have abundant phytoplankton (e.g., the western Atlantic ocean, where trade winds bring dust from the Sahara Desert in north Africa). It seems a paradox that arid land areas may actually contribute to increased plant life proliferation in the world's oceans. It has been theorized (but never actually attempted) that large-scale 'seeding' of the world's oceans with iron would generate such massive blooms of phytoplankton so as to draw enough carbon dioxide out of the atmosphere to counteract the Greenhouse Effect (or global warming).{{citation needed}}
  
 
While plankton are found in the greatest abundance in surface waters, they occur throughout the water column.  At depths where no primary production occurs, zooplankton and bacterioplankton instead make use of organic material sinking from the more productive surface waters above.  This flux of sinking material can be especially high following the termination of [[spring bloom]]s.
 
While plankton are found in the greatest abundance in surface waters, they occur throughout the water column.  At depths where no primary production occurs, zooplankton and bacterioplankton instead make use of organic material sinking from the more productive surface waters above.  This flux of sinking material can be especially high following the termination of [[spring bloom]]s.
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==Biogeochemical significance==
 
==Biogeochemical significance==
  
[[Image:Copepodkils.jpg|thumb|right|200px|A [[copepod]] (''Calanoida'' sp.) ca. [[1_E-3_m|1-2mm]] long]]
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[[Image:Copepodkils.jpg|thumb|right|200px|A [[copepod]] (''Calanoida'' sp.) ca. [[1_E-3_m|1-2 mm]] long]]
  
 
Aside from representing the bottom few levels of a [[food chain]] that leads up to [[Commerce|commercially]] important [[Fishery|fisheries]], plankton [[ecosystem]]s play a role in the [[biogeochemical cycle]]s of many important [[Chemical element|elements]].  Of particular contemporary significance is their role in the ocean's [[carbon cycle]].  
 
Aside from representing the bottom few levels of a [[food chain]] that leads up to [[Commerce|commercially]] important [[Fishery|fisheries]], plankton [[ecosystem]]s play a role in the [[biogeochemical cycle]]s of many important [[Chemical element|elements]].  Of particular contemporary significance is their role in the ocean's [[carbon cycle]].  
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As stated, phytoplankton fix [[carbon]] in sunlit surface waters via photosynthesis.  Through (primarily) zooplankton grazing, this carbon enters the planktonic foodweb, where it is either [[Cellular respiration|respired]] to provide [[metabolism|metabolic]] energy, or accumulates as [[biomass]] or [[detritus]].  As living or dead organic material is typically more [[density|dense]] than [[seawater]] it tends to sink, and in open ocean ecosystems away from the [[coast]]s this leads to the transport of carbon from surface waters to the deep.  This process is known as the '''[[biological pump]]''', and is one of the reasons that the oceans constitute the largest (active) pool of carbon on [[Earth science|Earth]].  
 
As stated, phytoplankton fix [[carbon]] in sunlit surface waters via photosynthesis.  Through (primarily) zooplankton grazing, this carbon enters the planktonic foodweb, where it is either [[Cellular respiration|respired]] to provide [[metabolism|metabolic]] energy, or accumulates as [[biomass]] or [[detritus]].  As living or dead organic material is typically more [[density|dense]] than [[seawater]] it tends to sink, and in open ocean ecosystems away from the [[coast]]s this leads to the transport of carbon from surface waters to the deep.  This process is known as the '''[[biological pump]]''', and is one of the reasons that the oceans constitute the largest (active) pool of carbon on [[Earth science|Earth]].  
  
Some researchers have even proposed that it might be possible to increase the ocean's uptake of [[carbon dioxide#atmosphere|carbon dioxide]] generated through [[anthropogenic|human activities]] by increasing the production of plankton through [[fertilization]], primarily with the [[micronutrient]] [[iron]].  However, it is debatable whether this technique is practical at a large scale, and some researchers have drawn attention to possible drawbacks such as ocean [[oxygen depletion|anoxia]] and resultant [[methanogen|methanogenesis]] (caused by the excess production [[remineralisation|remineralising]] at depth).
+
Some researchers have even proposed that it might be possible to increase the ocean's uptake of [[carbon dioxide#atmosphere|carbon dioxide]] generated through [[anthropogenic|human activities]] by increasing the production of plankton through [[fertilization]], primarily with the [[micronutrient]] [[iron]].  However, it is debatable whether this technique is practical at a large scale, and some researchers have drawn attention to possible drawbacks such as ocean [[oxygen depletion|anoxia]] and resultant [[methanogen|methanogenesis]] (caused by the excess production [[remineralisation|remineralising]] at depth).{{citation needed}}
  
 
==Popular Culture==
 
==Popular Culture==
 
[[Image:Tomopteriskils.jpg|thumb|200px|''[[Tomopteris]]'', a [[polychaete]]]]
 
[[Image:Tomopteriskils.jpg|thumb|200px|''[[Tomopteris]]'', a [[polychaete]]]]
  
In the animated television series ''[[SpongeBob SquarePants]]'', [[Sheldon J. Plankton]] is the name one of the primary antagonists SpongeBob faces.  His relationship to plankton is manifested in his size, and he is much smaller than the other characters.
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In the animated television series ''[[SpongeBob SquarePants]]'', [[Sheldon J. Plankton]] is the name of one of the primary antagonists SpongeBob faces.  His relationship to plankton is manifested in his size, as he is much smaller than the other characters.
  
In an episode of the animated television series ''[[The Simpsons]]'', the family chooses to go shopping at a 33-cent discount store which offers a variety of strange foods.  [[Homer Simpson|Homer]] purchases and eats expired canned plankton, and consequently falls ill as a result of [[Algal bloom#Red tide|red tide poisoning]].
+
In an episode of the animated television series ''[[The Simpsons]]'', the family chooses to go shopping at a 33-cent discount store which offers a variety of strange foods.  [[Homer Simpson|Homer]] purchases and eats expired canned plankton, and consequently falls ill as a result of [[Red tide|red tide poisoning]].
  
 
The [[science fiction]] novels ''[[Timescape]]'' by [[Gregory Benford]], and ''The Secret Of Life'' by [[Paul McAuley]] both invoke environmental disasters caused by changes in the ecological behaviour of plankton.
 
The [[science fiction]] novels ''[[Timescape]]'' by [[Gregory Benford]], and ''The Secret Of Life'' by [[Paul McAuley]] both invoke environmental disasters caused by changes in the ecological behaviour of plankton.
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*Omori, M. and Ikeda, T. (1992).  ''Methods in Marine Zooplankton Ecology'', Krieger Publishing Company, Malabar, USA.
 
*Omori, M. and Ikeda, T. (1992).  ''Methods in Marine Zooplankton Ecology'', Krieger Publishing Company, Malabar, USA.
  
==See also==
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{{credit3|Plankton|55921506|Phytoplankton|54393169|Bacterioplankton|38198468}}
*[[Algal bloom]]
 
 
 
[[Category:Biological oceanography]]
 
[[Category:Planktology]]
 
 
 
[[cs:Plankton]]
 
[[da:Plankton]]
 
[[de:Plankton]]
 
[[es:Plancton]]
 
[[eo:Planktono]]
 
[[fr:Plancton]]
 
[[ia:Plancton]]
 
[[it:Plancton]]
 
[[he:פלנקטון]]
 
[[nl:Plankton]]
 
[[ja:プランクトン]]
 
[[no:Plankton]]
 
[[pl:Plankton]]
 
[[pt:Plâncton]]
 
[[ru:Планктон]]
 
[[fi:Plankton]]
 
[[sv:Plankton]]
 
[[vi:Sinh vật phù du]]
 
[[uk:Планктон]]
 
[[zh:浮游生物界]]
 
 
 
{{credit|45706452}}
 
 
[[Category:Life sciences]]
 
[[Category:Life sciences]]

Revision as of 21:41, 30 May 2006

Steve, I added the articles from phytoplankton and bacterioplankton from Wikipedia. This is because in other articles, we often cite phytoplankton and zooplankton, and if they are a separate section, I can link right to those sections. But there was not any Wikipedia article on zooplankton, so please author a paragraph on them in the relevant section. Because I simply cut and pasted from the phytoplankton and bacterioplankton articles, there may be some overlap with what is already in the article. Thanks. Rick Swarts 21:41, 30 May 2006 (UTC)


Photomontage of plankton organisms

Plankton are drifting organisms that inhabit the water column of oceans, seas, and bodies of fresh water.

Definitions

An amphipod

The name plankton is derived from the Greek term πλανκτον, meaning "wanderer" or "drifter". While some forms of plankton are capable of independent movement and can swim up to several hundreds of metres vertically in a single day (a behavior called diel vertical migration), their horizontal position is primarily determined by currents in the body of water they inhabit. By definition, organisms classified as "plankton" are unable to resist ocean currents. This is in contrast to nekton organisms that can swim against the ambient flow of the water environment and control their position (e.g. squid, fish, krill and marine mammals).

Some marine diatoms - a key phytoplankton group

Within the plankton itself, holoplankton are those organisms that spend their entire life cycle as part of the plankton (e.g. most algae, copepods, salps, and jellyfish). By contrast, meroplankton are those organisms that are only planktonic for part of their lives (usually the larval stage), and that graduate to either the nekton or a benthic existence. Examples of meroplankton include the larvae of sea urchins, starfish, crustaceans, marine worms, and most fish.

Plankton abundance and distribution are strongly dependent on factors such as ambient nutrients concentrations, the physical state of the water column, and the abundance of other plankton.

The study of plankton is termed planktology. Individual plankton are referred to as plankters.

Functional groups

An amphipod (Hyperia macrocephala)

Plankton are primarily divided into broad functional (or trophic level) groups:

This scheme divides the plankton community into broad producer, consumer and recycler groups. In reality, even the trophic level of some plankton is not straightforward. For example, although most dinoflagellates are either photosynthetic producers or heterotrophic consumers, many species are mixotrophic depending upon their circumstances.

Phytoplankton

Diagrams of some typical phytoplankton

Phytoplankton refers to the autotrophic component of the plankton that drifts in the water column. The name comes from the Greek terms, phyton or "plant" and , meaning "wanderer" or "drifter". Most phytoplankton are too small to be individually seen with the unaided eye. However, when present in high numbers, their presence may appear as discoloration of the water (the color of which may vary with the phytoplankton present).

Phytoplankton, like plants, obtain energy through a process called photosynthesis, and so must live in the well-lit surface layer (termed the euphotic zone) of an ocean, sea, or lake. Through photosynthesis, phytoplankton (and terrestrial plants) are responsible for much of the oxygen present in the Earth's atmosphere. Their cumulative energy fixation in carbon compounds (primary production) is the basis for the vast majority of oceanic and some freshwater food chains (chemosynthesis is a notable exception). As a side note, one of the more remarkable food-chains in the ocean—remarkable because of the small number of links—is that of phytoplankton fed on by krill (a type of shrimp) fed on by baleen whales.

While almost all phytoplankton species are obligate photoautotrophs, there are some that are mixotrophic and other, non-pigmented species that are actually heterotrophic (the latter are often viewed as zooplankton). Of these, the best known are dinoflagellate genera such as Noctiluca and Dinophysis, that obtain organic carbon by ingesting other organisms or detrital material.

In terms of numbers, the most important groups of phytoplankton include the diatoms, cyanobacteria and dinoflagellates, although many other groups of algae are represented. One group, the coccolithophorids, is responsible (in part) for the release of significant amounts of dimethyl sulfide (DMS) into the atmosphere. DMS is converted to sulfate and these sulfate molecules act as cloud condensation nuclei, increasing general cloud cover.

Phytoplankton, like other plants, obtain energy through a process called photosynthesis and so must live in the well-lit surface layer of an ocean, sea or lake. Through photosynthesis phytoplankton produce approximately 98% of atmospheric oxygen.


Zooplankton

needs some elaboration

Bacterioplankton

Bacterioplankton refers to the bacterial component of the plankton that drifts in the water column. The name comes from the Greek term, πλαγκτον, meaning "wanderer" or "drifter", and bacterium, a word coined in the 19th century by Christian Gottfried Ehrenberg. They are found in both seawater and freshwater.

Most bacterioplankton (for instance, Bacillus and Nitrosomonas) obtain their energy through decomposition of other organisms, which largely renders them dependent on the phytoplankton for the production of dissolved organic matter as their main food source. A few species of bacterioplankton are capable of photosynthesis and chemosynthesis. Bacterio- and phytoplankton can regulate each others' numbers through mutual dependence and competition for resources such as phosphorus. They are preyed upon by protozoa and some cladocera, as well as phages.


Size groups

Siphonophora – the "conveyor belt" of the upgrowing larvae and the ovarium can be seen

Plankton are also often described in terms of size. Usually the following divisions are used:

  • Megaplankton, 2×10-1→2×100 m (20-200 cm)
  • Macroplankton, 2×10-2→2×10-1 m (2-20 cm)
  • Mesoplankton, 2×10-4→2×10-2 m (0.2 mm-2 cm)
  • Microplankton, 2×10-5→2×10-4 m (20-200 µm)
  • Nanoplankton, 2×10-6→2×10-5 m (2-20 µm)
  • Picoplankton, 2×10-7→2×10-6 m (0.2-2 µm), mostly bacteria
  • Femtoplankton, < 2×10-7 m, (< 0.2 µm), consisting of marine viruses

However, some of these terms may be used with very different boundaries, especially on the larger end of the scale. The existence and importance of nano- and even smaller plankton was only discovered during the 1980s, but they are thought to make up the largest proportion of all plankton in number and diversity.

Distribution

Ceratium, a dinoflagellate phytoplankter

Plankton are found throughout the oceans, seas and lakes of Earth. However, the local abundance of plankton varies horizontally, vertically and seasonally. The primary source of this variability is the availability of light. All plankton ecosystems are driven by the input of solar energy (but see chemosynthesis), and this confines primary production to surface waters, and to geographical regions and seasons when light is abundant.

A secondary source of variability is that of nutrient availability. Although large areas of the tropical and sub-tropical oceans have abundant light, they experience relatively low primary production because of the poor availability of nutrients such as nitrate, phosphate and silicate. This is a product of large-scale ocean circulation and stratification of the water column. In such regions, primary production, still usually occurs at greater depth, although at a reduced level (because of reduced light).

Studies have shown[citation needed] that the mineral iron (but only in the proper amounts) leads to increased blooms of many (though not all) kinds of phytoplankton. Iron is primarily made available to oceanic phytoplankton through the deposition of atmospheric dust on the sea surface. Oceanic areas adjacent to arid parts of continents thus typically have abundant phytoplankton (e.g., the western Atlantic ocean, where trade winds bring dust from the Sahara Desert in north Africa). It seems a paradox that arid land areas may actually contribute to increased plant life proliferation in the world's oceans. It has been theorized (but never actually attempted) that large-scale 'seeding' of the world's oceans with iron would generate such massive blooms of phytoplankton so as to draw enough carbon dioxide out of the atmosphere to counteract the Greenhouse Effect (or global warming).[citation needed]

While plankton are found in the greatest abundance in surface waters, they occur throughout the water column. At depths where no primary production occurs, zooplankton and bacterioplankton instead make use of organic material sinking from the more productive surface waters above. This flux of sinking material can be especially high following the termination of spring blooms.

Biogeochemical significance

A copepod (Calanoida sp.) ca. 1-2 mm long

Aside from representing the bottom few levels of a food chain that leads up to commercially important fisheries, plankton ecosystems play a role in the biogeochemical cycles of many important elements. Of particular contemporary significance is their role in the ocean's carbon cycle.

As stated, phytoplankton fix carbon in sunlit surface waters via photosynthesis. Through (primarily) zooplankton grazing, this carbon enters the planktonic foodweb, where it is either respired to provide metabolic energy, or accumulates as biomass or detritus. As living or dead organic material is typically more dense than seawater it tends to sink, and in open ocean ecosystems away from the coasts this leads to the transport of carbon from surface waters to the deep. This process is known as the biological pump, and is one of the reasons that the oceans constitute the largest (active) pool of carbon on Earth.

Some researchers have even proposed that it might be possible to increase the ocean's uptake of carbon dioxide generated through human activities by increasing the production of plankton through fertilization, primarily with the micronutrient iron. However, it is debatable whether this technique is practical at a large scale, and some researchers have drawn attention to possible drawbacks such as ocean anoxia and resultant methanogenesis (caused by the excess production remineralising at depth).[citation needed]

Popular Culture

Tomopteris, a polychaete

In the animated television series SpongeBob SquarePants, Sheldon J. Plankton is the name of one of the primary antagonists SpongeBob faces. His relationship to plankton is manifested in his size, as he is much smaller than the other characters.

In an episode of the animated television series The Simpsons, the family chooses to go shopping at a 33-cent discount store which offers a variety of strange foods. Homer purchases and eats expired canned plankton, and consequently falls ill as a result of red tide poisoning.

The science fiction novels Timescape by Gregory Benford, and The Secret Of Life by Paul McAuley both invoke environmental disasters caused by changes in the ecological behaviour of plankton.

The Nintendo DS console has a videogame called Electroplankton in which they create music.

References
ISBN links support NWE through referral fees

  • Omori, M. and Ikeda, T. (1992). Methods in Marine Zooplankton Ecology, Krieger Publishing Company, Malabar, USA.

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