Home LiteratureArticle Details
PMID: 19805210 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't

The genomic basis of trophic strategy in marine bacteria.

Lauro FM, McDougald D, Thomas T, Williams TJ, Egan S, Rice S, DeMaere MZ, Ting L, Ertan H, Johnson J, Ferriera S, Lapidus A, Anderson I, Kyrpides N, Munk AC, Detter C, Han CS, Brown MV, Robb FT, Kjelleberg S, Cavicchioli R

Abstract

Many marine bacteria have evolved to grow optimally at either high (copiotrophic) or low (oligotrophic) nutrient concentrations, enabling different species to colonize distinct trophic habitats in the oceans. Here, we compare the genome sequences of two bacteria, Photobacterium angustum S14 and Sphingopyxis alaskensis RB2256, that serve as useful model organisms for copiotrophic and oligotrophic modes of life and specifically relate the genomic features to trophic strategy for these organisms and define their molecular mechanisms of adaptation. We developed a model for predicting trophic lifestyle from genome sequence data and tested >400,000 proteins representing >500 million nucleotides of sequence data from 126 genome sequences with metagenome data of whole environmental samples. When applied to available oceanic metagenome data (e.g., the Global Ocean Survey data) the model demonstrated that oligotrophs, and not the more readily isolatable copiotrophs, dominate the ocean's free-living microbial populations. Using our model, it is now possible to define the types of bacteria that specific ocean niches are capable of sustaining.

MeSH Terms
Bacteria/genetics,growth & development Ecosystem Genome, Bacterial Marine Biology Models, Biological Molecular Sequence Data Photobacterium/genetics,growth & development Sphingomonadaceae/genetics,growth & development
Authors & Affiliations
21 authors, click to expand affiliations / ORCID
Lauro Federico M
Environmental Microbiology Initiative, School of Biotechnology and Biomolecular Sciences, University of New South Wales, Sydney NSW 2052, Australia.
McDougald Diane
Thomas Torsten
Williams Timothy J
Egan Suhelen
Rice Scott
DeMaere Matthew Z
Ting Lily
Ertan Haluk
Johnson Justin
Ferriera Steven
Lapidus Alla
Anderson Iain
Kyrpides Nikos
Munk A Christine
Detter Chris
Han Cliff S
Brown Mark V
Robb Frank T
Kjelleberg Staffan
Cavicchioli Ricardo
References (33)
33 references, click to expand
  1. C-di-GMP: the dawning of a novel bacterial signalling system.
    Mol Microbiol. 2005 Aug;57(3):629-39 PMID: 16045609
  2. Life under nutrient limitation in oligotrophic marine environments: an eco/physiological perspective of Sphingopyxis alaskensis (formerly Sphingomonas alaskensis).
    Microb Ecol. 2003 Mar;45(3):203-17 PMID: 12632213
  3. Cyclic di-GMP as a bacterial second messenger.
    Microbiology (Reading). 2004 Aug;150(Pt 8):2497-2502 PMID: 15289546
  4. Can microscale chemical patches persist in the sea? Microelectrode study of marine snow, fecal pellets.
    Science. 1987 Feb 6;235(4789):689-91 PMID: 17833630
  5. Viral production, decay rates, and life strategies along a trophic gradient in the North Adriatic Sea.
    Appl Environ Microbiol. 2005 Nov;71(11):6644-50 PMID: 16269692
  6. Transfer of photosynthesis genes to and from Prochlorococcus viruses.
    Proc Natl Acad Sci U S A. 2004 Jul 27;101(30):11013-8 PMID: 15256601
  7. Implications of rRNA operon copy number and ribosome content in the marine oligotrophic ultramicrobacterium Sphingomonas sp. strain RB2256.
    Appl Environ Microbiol. 1998 Nov;64(11):4433-8 PMID: 9797303
  8. Genomic sequencing of single microbial cells from environmental samples.
    Curr Opin Microbiol. 2008 Jun;11(3):198-204 PMID: 18550420
  9. Genome sequence of Silicibacter pomeroyi reveals adaptations to the marine environment.
    Nature. 2004 Dec 16;432(7019):910-3 PMID: 15602564
  10. MetaGene: prokaryotic gene finding from environmental genome shotgun sequences.
    Nucleic Acids Res. 2006;34(19):5623-30 PMID: 17028096
  11. Prokaryotic lifestyles in deep sea habitats.
    Extremophiles. 2008 Jan;12(1):15-25 PMID: 17225926
  12. Genome streamlining in a cosmopolitan oceanic bacterium.
    Science. 2005 Aug 19;309(5738):1242-5 PMID: 16109880
  13. Microbial oceanography: paradigms, processes and promise.
    Nat Rev Microbiol. 2007 Oct;5(10):759-69 PMID: 17853905
  14. Isolation of Typical Marine Bacteria by Dilution Culture: Growth, Maintenance, and Characteristics of Isolates under Laboratory Conditions.
    Appl Environ Microbiol. 1993 Jul;59(7):2150-60 PMID: 16348992
  15. The Sorcerer II Global Ocean Sampling expedition: northwest Atlantic through eastern tropical Pacific.
    PLoS Biol. 2007 Mar;5(3):e77 PMID: 17355176
  16. Sphingomonas alaskensis strain AFO1, an abundant oligotrophic ultramicrobacterium from the North Pacific.
    Appl Environ Microbiol. 2001 Nov;67(11):4945-54 PMID: 11679312
  17. Substrate uptake and utilization by a marine ultramicrobacterium.
    Microbiology (Reading). 1995 Feb;141 ( Pt 2):351-61 PMID: 7704265
  18. CRISPR--a widespread system that provides acquired resistance against phages in bacteria and archaea.
    Nat Rev Microbiol. 2008 Mar;6(3):181-6 PMID: 18157154
  19. Responses of marine bacteria under starvation conditions at a solid-water interface.
    Appl Environ Microbiol. 1983 Jan;45(1):43-7 PMID: 16346180
  20. Single-cell genomics.
    Nat Rev Microbiol. 2008 Mar;6(3):176-7 PMID: 18283727
  21. rRNA operon copy number reflects ecological strategies of bacteria.
    Appl Environ Microbiol. 2000 Apr;66(4):1328-33 PMID: 10742207
  22. Comparative metagenomics of microbial communities.
    Science. 2005 Apr 22;308(5721):554-7 PMID: 15845853
  23. Microbial community genomics in the ocean.
    Nat Rev Microbiol. 2005 Jun;3(6):459-69 PMID: 15886695
  24. Pirellula and OM43 are among the dominant lineages identified in an Oregon coast diatom bloom.
    Environ Microbiol. 2006 Aug;8(8):1361-70 PMID: 16872400
  25. Uptake of D-glucose and L-proline by oligotrophic and heterotrophic marine bacteria.
    Can J Microbiol. 1980 Apr;26(4):454-9 PMID: 7378939
  26. Bacterial Colonization and Ectoenzymatic Activity in Phytoplankton-Derived Model Particles. Part II. Cleavage and Uptake of Carbohydrates
    Microb Ecol. 1998 Jul;36(1):66-74 PMID: 9622566
  27. Marine viruses--major players in the global ecosystem.
    Nat Rev Microbiol. 2007 Oct;5(10):801-12 PMID: 17853907
  28. Microbial structuring of marine ecosystems.
    Nat Rev Microbiol. 2007 Oct;5(10):782-91 PMID: 17853906
  29. Prediction of effective genome size in metagenomic samples.
    Genome Biol. 2007;8(1):R10 PMID: 17224063
  30. Transport functions dominate the SAR11 metaproteome at low-nutrient extremes in the Sargasso Sea.
    ISME J. 2009 Jan;3(1):93-105 PMID: 18769456
  31. The transient phase between growth and nongrowth of heterotrophic bacteria, with emphasis on the marine environment.
    Annu Rev Microbiol. 1987;41:25-49 PMID: 3318670
  32. Prokaryotes: the unseen majority.
    Proc Natl Acad Sci U S A. 1998 Jun 9;95(12):6578-83 PMID: 9618454
  33. Comparison of lysogeny (prophage induction) in heterotrophic bacterial and Synechococcus populations in the Gulf of Mexico and Mississippi River plume.
    ISME J. 2008 Feb;2(2):132-44 PMID: 18049460
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
2009-09-15
Epub
2009-00-08
Pages
15527-33
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC2739866
Subset
IM
Databases
GENBANK
AAOJ00000000, CP000356, CP000357
Corrections
CommentIn
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com