Picoeukaryote

From Wikipedia, the free encyclopedia

Picoeukaryotes are picoplanktonic eukaryotic organisms that range in size from 0.2 – 2.0 µm. They are distributed throughout the world’s marine and freshwater ecosystems and constitute a significant contribution to autotrophic communities.

Ostreococcus, the smallest known eukaryote. [1]
Ostreococcus, the smallest known eukaryote. [1]

Contents

[edit] Characteristics

[edit] Cell Structure

Picoeukaryotes can be either autotrophic and heterotrophic, and usually contain a minimal number of organelles. For example, Ostreococcus tauri, an autotrophic picoeukaryote belonging to the class Prasinophyceae, contains only the nucleus, one mitochondrion and one chloroplast, tightly packed within a cell membrane. Members of a heterotrophic class, the Biscosoecida, similarly contain only two mitochondria, one food vacuole and a nucleus.[1]

[edit] Distributions

These organisms are found throughout the water columns. Autotrophic picoeukaryotes are restricted to the upper 100-200 m (the layer that receives light) and are often characterized by a sharp cell maximum near the Deep Chlorophyll Maximum Layer (DCML)[2] and decrease significantly below.[3] Heterotrophic groups are found at greater depths and for example, in the Pacific Ocean, they have been found in the vicinity ofhydrothermal vents at depths up to 2000-2550 m. Some heterotrophic lineages are found, unstratified, at all depths from the surface down to 3000 m. [1] They show high phylogenetic diversity[4] [5] and high variability in global cell concentrations, ranging from 107 to 105 liter-1.[3]

[edit] Diversity

Autotrophic picoeukaryotes are members of groups such as the Prasinophyceae, belonging to the Chlorophyta or “green algae”, and the Haptophyceae. [4] Regardless of their small size, these organisms have been found to contribute at least 10% of the total global aquatic net primary productivity[6]. In more oligotrophic environments, such around the Hawaiian station of ALOHA, researchers believe that approximately 80% of the chlorophyll α biomass is due to cells in the pico-size range. [2] Their contribution to carbon cycling is difficult to assess because they are difficult to separate by techniques such as filtration[7]. Recent fluorescent in situ hybridization (FISH) experiments have shown that picoeukaryotes are fairly abundant in the deep sea[1]. Increased resolution with the development of better FISH techniques indicates that study and detection should become easier. [8] Research has also shown that picoeukaryotes have a strong correlation with chlorophyll concentrations in both meso-autotrophic reservoirs and hypereutrophic reservoirs. [9] Moreover, nitrogen enrichment experiments suggest that picoeukaryotes have an advantage over larger cells when it comes to acquiring nutrients because of their large surface area per unit volume. They have exhibited more effectiveness in the uptake of photons and nutrient from low-resource environments. [6]


[edit] Biological Characteristics

Picoeukaryotes, much like other planktonic species, are exposed to light variations during the diel cycle and due to vertical displacement in the mixed layer of the water column. They have specialized biological reactions to help them deal with excessive densities of light, such as the Xanthophyll cycle. [10]

[edit] See also

[edit] Notes

  1. ^ a b c Moreira, D.; P. Lopez-Garcia (2002). "The molecular ecology of microbial eukaryotes unveils a hidden world". Trends in Microbiology 10 (1): 31-38. 
  2. ^ a b Campbell, Lisa and Daniel Vaulot. Photosynthetic picoplankton community structure in the subtropical north pacific ocean near Hawaii (station ALOHA). Deep-Sea Research 1, Vol. 40, No. 10, pp. 2043-2060 (1993). Accessed April 30, 2008.
  3. ^ a b Hall, J.A. and W.F. Vincent. Vertical and horizontal structure in the picoplankton communities of a coastal upwelling system. Marine Biology 106, 465-471 (1990). Accessed April 30, 2008.
  4. ^ a b Massana, R. et. al. Unveiling the Organisms behind Novel Eukaryotic Ribosomal DNA Sequences from the Ocean. Applied and Environmental Microbiology, 4554-4558 (2002). Accessed April 30, 2008
  5. ^ Moon-van der Staay, S. et. al. Oceanic 18S rDNA sequences from picoplankton reveal unsuspected eukaryotic diversity. Nature 409, 607-610 (2001). Accessed April 30, 2008.
  6. ^ a b Fouilland, E. et. al. Productivity and growth of a natural population of the smallest free-living eukaryote under nitrogen deficiency and sufficiency. Microbial Ecology 48, 103–110(2004). Accessed April 30, 2008.
  7. ^ Worden, A. Z. et al. (2004). Assessing the dynamics and ecology of marine picophytoplankton: The importance of the eukaryotic component. Limnology and Oceanography 49: 168-79.
  8. ^ Biegala, I.C. et. al. Quantitative Assessment of Picoeukaryotes in the Natural Environment by Using Taxon-Specific Oligonucleotide Probes in Association with Tyramide Signal Amplification-Fluorescence In Situ Hybridization and Flow Cytometry. Applied and Environmental Microbiology, 5519-5529 (2003). Accessed April 30, 2008.
  9. ^ Wang, Baoli et. al. The distributions of autumn picoplankton in relation to environmental factors in the reservoirs along the Wujiang River in Guizhou Province, SW China. Hydrobiologia 598:35–45 (2008). Accessed April 30, 2008.
  10. ^ Dimier, Celine. et. al. Photophysiological properties of the marine picoeukaryote Picochlorum RCC 237 (Trebouxiophyceae, Chlorophyta). J. Phycol. 43, 275–283 (2007). Accessed April 30, 2008.

[edit] External links

  • MicrobeWiki A site on a biology Wiki run by Kenyon College