Literature DB >> 12039760

Distribution of membrane lipids of planktonic Crenarchaeota in the Arabian Sea.

Jaap S Sinninghe Damsté1, W Irene C Rijpstra, Ellen C Hopmans, Fredrick G Prahl, Stuart G Wakeham, Stefan Schouten.   

Abstract

Intact core tetraether membrane lipids of marine planktonic Crenarchaeota were quantified in water column-suspended particulate matter obtained from four depth intervals ( approximately 70, 500, 1,000 and 1,500 m) at seven stations in the northwestern Arabian Sea to investigate the distribution of the organisms at various depths. Maximum concentrations generally occurred at 500 m, near the top of the oxygen minimum zone, and the concentrations at this depth were, in most cases, slightly higher than those in surface waters. In contrast, lipids derived from eukaryotes (cholesterol) and from eukaryotes and bacteria (fatty acids) were at their highest concentrations in surface waters. This indicates that these crenarchaeotes are not restricted to the photic zone of the ocean, which is consistent with the results of recent molecular biological studies. Since the Arabian Sea has a strong oxygen minimum zone between 100 and 1,000 m, with minimum oxygen levels of <1 microM, the abundance of crenarchaeotal membrane lipids at 500 m suggests that planktonic Crenarchaeota are probably facultative anaerobes. The cell numbers we calculated from the concentrations of membrane lipids are similar to those reported for the Central Pacific Ocean, supporting the recent estimation of M. B. Karner, E. F. DeLong, and D. M. Karl ( Nature 409:507-510, 2001) that the world's oceans contain ca. 10(28) cells of planktonic Crenarchaeota.

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Year:  2002        PMID: 12039760      PMCID: PMC123986          DOI: 10.1128/AEM.68.6.2997-3002.2002

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  21 in total

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  28 in total

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7.  Archaeal nitrification in the ocean.

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8.  Thermophilic temperature optimum for crenarchaeol synthesis and its implication for archaeal evolution.

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Review 10.  Microbial ecology of expanding oxygen minimum zones.

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