Abstract
arising from Y. Zhao et al. Nature 494, 357–360 (2013)10.1038/nature11921
The recent findings of abundant SAR11 viruses by Zhao et al.1 are intriguing, and add new insight into the on-going discussion of why SAR11 bacteria are highly successful in the pelagic ocean. On the basis of high SAR11 virus abundance, Zhao et al.1 claim that SAR11 bacteria are competition specialists. Alternatively, we show here how their findings could be consistent with a dominance of defensive SAR11 strains. Considering their high abundance, understanding why SAR11 bacteria are so successful has important implications for the study of the pelagic ecosystem2. There is a Reply to this Brief Communication Arising by Giovannoni, S., Temperton, B. & Zhao, Y. Nature 499, http://dx.doi.org/10.1038/nature12388 (2013).
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References
Zhao, Y. et al. Abundant SAR11 viruses in the ocean. Nature 494, 357–360 (2013)
Kirchman, D. L. Microbial oceanography: killers of the winners. Nature 494, 320–321 (2013)
Grote, J. et al. Streamlining and core genome conservation among highly divergent members of the SAR11 clade. mBio 3, e00252–12 (2012)
Suttle, C. A. Marine viruses — major players in the global ecosystem. Nature Rev. Microbiol. 5, 801–812 (2007)
Våge, S., Storesund, J. E. & Thingstad, T. F. Adding a cost of resistance description extends the ability of virus-host model to explain observed patterns in structure and function of pelagic microbial communities. Environ. Microbiol. 15, 1842–1852 (2013)
Thingstad, T. F. Elements of a theory for the mechanisms controlling abundance, diversity, and biogeochemical role of lytic bacterial viruses in aquatic systems. Limnol. Oceanogr. 45, 1320–1328 (2000)
Malmstrom, R. R., Kiene, R. P., Cottrell, M. T. & Kirchman, D. L. Contribution of SAR11 bacteria to dissolved dimethylsulfoniopropionate and amino acid uptake in the North Atlantic Ocean. Appl. Environ. Microbiol. 70, 4129–4135 (2004)
Teira, E., Martines-Garcia, S., Lønborg, C. & Alvarez-Salgado, X. A. Growth rates of different phylogenetic bacterioplankton groups in a coastal upwelling system. Environ. Microbiol. Rep. 1, 545–554 (2009)
Bouvier, T. & del Giorgio, P. A. Key role of selective viral-induced mortality in determining marine bacterial community composition. Environ. Microbiol. 9, 287–297 (2007)
Rodriguez-Brito, B. et al. Viral and microbial community dynamics in four aquatic environments. ISME J. 4, 739–751 (2010)
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S.V., J.E.S. and T.F.T. were responsible for planning, discussing and editing the comment. T.F.T. and S.V. developed the model, and S.V. was responsible for writing and illustrating the comment.
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Våge, S., Storesund, J. & Thingstad, T. SAR11 viruses and defensive host strains. Nature 499, E3–E4 (2013). https://doi.org/10.1038/nature12387
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DOI: https://doi.org/10.1038/nature12387
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