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PMID: 23801761 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Prevalent genome streamlining and latitudinal divergence of planktonic bacteria in the surface ocean.

Swan BK, Tupper B, Sczyrba A, Lauro FM, Martinez-Garcia M, González JM, Luo H, Wright JJ, Landry ZC, Hanson NW, Thompson BP, Poulton NJ, Schwientek P, Acinas SG, Giovannoni SJ, Moran MA, Hallam SJ, Cavicchioli R, Woyke T, Stepanauskas R

Abstract

Planktonic bacteria dominate surface ocean biomass and influence global biogeochemical processes, but remain poorly characterized owing to difficulties in cultivation. Using large-scale single cell genomics, we obtained insight into the genome content and biogeography of many bacterial lineages inhabiting the surface ocean. We found that, compared with existing cultures, natural bacterioplankton have smaller genomes, fewer gene duplications, and are depleted in guanine and cytosine, noncoding nucleotides, and genes encoding transcription, signal transduction, and noncytoplasmic proteins. These findings provide strong evidence that genome streamlining and oligotrophy are prevalent features among diverse, free-living bacterioplankton, whereas existing laboratory cultures consist primarily of copiotrophs. The apparent ubiquity of metabolic specialization and mixotrophy, as predicted from single cell genomes, also may contribute to the difficulty in bacterioplankton cultivation. Using metagenome fragment recruitment against single cell genomes, we show that the global distribution of surface ocean bacterioplankton correlates with temperature and latitude and is not limited by dispersal at the time scales required for nucleotide substitution to exceed the current operational definition of bacterial species. Single cell genomes with highly similar small subunit rRNA gene sequences exhibited significant genomic and biogeographic variability, highlighting challenges in the interpretation of individual gene surveys and metagenome assemblies in environmental microbiology. Our study demonstrates the utility of single cell genomics for gaining an improved understanding of the composition and dynamics of natural microbial assemblages.

Keywords
comparative genomics marine microbiology microbial ecology microbial microevolution operational taxonomic unit
MeSH Terms
Bacteria/classification,genetics Genome, Bacterial Geography Marine Biology Oceans and Seas Plankton/classification,genetics Water Microbiology
Authors & Affiliations
20 authors, click to expand affiliations / ORCID
Swan Brandon K
Bigelow Laboratory for Ocean Sciences, East Boothbay, ME 04544, USA.
Tupper Ben
Sczyrba Alexander
Lauro Federico M
Martinez-Garcia Manuel
González José M
Luo Haiwei
Wright Jody J
Landry Zachary C
Hanson Niels W
Thompson Brian P
Poulton Nicole J
Schwientek Patrick
Acinas Silvia G
Giovannoni Stephen J
Moran Mary Ann
Hallam Steven J
Cavicchioli Ricardo
Woyke Tanja
Stepanauskas Ramunas
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Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2013-07-09
Epub
2013-00-25
Pages
11463-8
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC3710821
Subset
IM
Corrections
CommentIn
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