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PMID: 17431707 Published · ppublish English Journal Article

Metaproteomics: a new approach for studying functional microbial ecology.

Microbial ecology ·Vol. 53 ·No. 3 ·2007-04-00 ·Pages 486-93

Maron PA, Ranjard L, Mougel C, Lemanceau P

Abstract

In the postgenomic era, there is a clear recognition of the limitations of nucleic acid-based methods for getting information on functions expressed by microbial communities in situ. In this context, the large-scale study of proteins expressed by indigenous microbial communities (metaproteome) should provide information to gain insights into the functioning of the microbial component in ecosystems. Characterization of the metaproteome is expected to provide data linking genetic and functional diversity of microbial communities. Studies on the metaproteome together with those on the metagenome and the metatranscriptome will contribute to progress in our knowledge of microbial communities and their contribution in ecosystem functioning. Effectiveness of the metaproteomic approach will be improved as increasing metagenomic information is made available thanks to the environmental sequencing projects currently running. More specifically, analysis of metaproteome in contrasted environmental situations should allow (1) tracking new functional genes and metabolic pathways and (2) identifying proteins preferentially associated with specific stresses. These proteins considered as functional bioindicators should contribute, in the future, to help policy makers in defining strategies for sustainable management of our environment.

MeSH Terms
Bacterial Physiological Phenomena Ecology/methods Environmental Microbiology Proteomics/methods
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Maron Pierre-Alain
UMR Microbiologie et Géochimie des Sols, INRA/Université de Bourgogne, CMSE, BP 86510, 17 rue de Sully, 21065, Dijon Cedex, France.
Ranjard Lionel
Mougel Christophe
Lemanceau Philippe
References (47)
47 references, click to expand
  1. Protein method for investigating mercuric reductase gene expression in aquatic environments.
    Appl Environ Microbiol. 1998 Feb;64(2):695-702 PMID: 9464410
  2. Microbial diversity and function in soil: from genes to ecosystems.
    Curr Opin Microbiol. 2002 Jun;5(3):240-5 PMID: 12057676
  3. Separation and purification of bacteria from soil.
    Appl Environ Microbiol. 1985 Jun;49(6):1482-7 PMID: 16346816
  4. Patterns of protein synthesis in E. coli: a catalog of the amount of 140 individual proteins at different growth rates.
    Cell. 1978 May;14(1):179-90 PMID: 352533
  5. Characterization of uncultivated prokaryotes: isolation and analysis of a 40-kilobase-pair genome fragment from a planktonic marine archaeon.
    J Bacteriol. 1996 Feb;178(3):591-9 PMID: 8550487
  6. Community proteomics of a natural microbial biofilm.
    Science. 2005 Jun 24;308(5730):1915-20 PMID: 15879173
  7. Protein Profile Variation in Cultivated and Native Freshwater Microorganisms Exposed to Chemical Environmental Pollutants
    Microb Ecol. 1996 May;31(3):291-304 PMID: 8661530
  8. Self-assembling protein microarrays.
    Science. 2004 Jul 2;305(5680):86-90 PMID: 15232106
  9. Mass spectral analysis in proteomics.
    Annu Rev Biophys Biomol Struct. 2004;33:297-316 PMID: 15139815
  10. Recent advances in peptide-based microarray technologies.
    Comb Chem High Throughput Screen. 2004 Sep;7(6):547-56 PMID: 15379626
  11. Protein extraction and fingerprinting optimization of bacterial communities in natural environment.
    Microb Ecol. 2007 Apr;53(3):426-34 PMID: 16944344
  12. The Achilles' heel of proteomics.
    Trends Biotechnol. 2000 Dec;18(12):483 PMID: 11102657
  13. Proteomics: a technology-driven and technology-limited discovery science.
    Trends Biotechnol. 2001 Jun;19(6):217-22 PMID: 11356283
  14. Proteome reference map of Pseudomonas putida strain KT2440 for genome expression profiling: distinct responses of KT2440 and Pseudomonas aeruginosa strain PAO1 to iron deprivation and a new form of superoxide dismutase.
    Environ Microbiol. 2003 Dec;5(12 ):1257-69 PMID: 14641572
  15. Simultaneous recovery of RNA and DNA from soils and sediments.
    Appl Environ Microbiol. 2001 Oct;67(10):4495-503 PMID: 11571148
  16. Quantification of bacterial subgroups in soil: comparison of DNA extracted directly from soil or from cells previously released by density gradient centrifugation.
    Environ Microbiol. 2001 Jul;3(7):431-9 PMID: 11553233
  17. Proteome analysis of the model microsymbiont Sinorhizobium meliloti: isolation and characterisation of novel proteins.
    Electrophoresis. 1999 Apr-May;20(4-5):818-25 PMID: 10344253
  18. Influence of maize mucilage on the diversity and activity of the denitrifying community.
    Environ Microbiol. 2004 Mar;6(3):301-12 PMID: 14871213
  19. Candida albicans pathogenicity: a proteomic perspective.
    Electrophoresis. 1999 Aug;20(11):2299-308 PMID: 10493133
  20. Metaproteomic analysis of Chesapeake Bay microbial communities.
    Saline Systems. 2005 Aug 19;1:7 PMID: 16176596
  21. Posttranslational modifications in the CP43 subunit of photosystem II.
    Proc Natl Acad Sci U S A. 2002 Nov 12;99(23):14676-81 PMID: 12417747
  22. Phylogenetic identification and in situ detection of individual microbial cells without cultivation.
    Microbiol Rev. 1995 Mar;59(1):143-69 PMID: 7535888
  23. Nucleotide sequence databases: a gold mine for biologists.
    Trends Biochem Sci. 1999 Jul;24(7):276-80 PMID: 10390617
  24. Monitoring complex bacterial communities using culture-independent molecular techniques: application to soil environment.
    Res Microbiol. 2000 Apr;151(3):167-77 PMID: 10865943
  25. Denitrifying genes in bacterial and Archaeal genomes.
    Biochim Biophys Acta. 2002 Sep 27;1577(3):355-76 PMID: 12359326
  26. A proteomic fingerprint of dissolved organic carbon and of soil particles.
    Oecologia. 2005 Jan;142(3):335-43 PMID: 15449171
  27. Immunological method for direct assessment of the functionality of a denitrifying strain of Pseudomonas fluorescens in soil.
    J Microbiol Methods. 2004 Jul;58(1):13-21 PMID: 15177899
  28. Use of mass spectrometry-derived data to annotate nucleotide and protein sequence databases.
    Trends Biochem Sci. 2001 Jan;26(1):54-61 PMID: 11165518
  29. Peptide mass maps: a highly informative approach to protein identification.
    Anal Biochem. 1993 Nov 1;214(2):397-408 PMID: 8109726
  30. Stable-isotope probing as a tool in microbial ecology.
    Nature. 2000 Feb 10;403(6770):646-9 PMID: 10688198
  31. The application of two-dimensional polyacrylamide gel electrophoresis and downstream analyses to a mixed community of prokaryotic microorganisms.
    Environ Microbiol. 2004 Sep;6(9):911-20 PMID: 15305916
  32. Occurrence of novel groups of the domain Bacteria as revealed by analysis of genetic material isolated from an Australian terrestrial environment.
    J Bacteriol. 1992 Aug;174(15):5072-8 PMID: 1629164
  33. Proteomics to study genes and genomes.
    Nature. 2000 Jun 15;405(6788):837-46 PMID: 10866210
  34. Microbial population genomics and ecology: the road ahead.
    Environ Microbiol. 2004 Sep;6(9):875-8 PMID: 15305912
  35. Evaluation of two-dimensional gel electrophoresis-based proteome analysis technology.
    Proc Natl Acad Sci U S A. 2000 Aug 15;97(17):9390-5 PMID: 10920198
  36. Metabolomics by numbers: acquiring and understanding global metabolite data.
    Trends Biotechnol. 2004 May;22(5):245-52 PMID: 15109811
  37. High resolution two-dimensional electrophoresis of proteins.
    J Biol Chem. 1975 May 25;250(10):4007-21 PMID: 236308
  38. Use of polyclonal antibodies to detect and quantify the NOR protein of nitrite oxidizers in complex environments.
    J Microbiol Methods. 2003 Apr;53(1):87-95 PMID: 12609727
  39. A proteomic analysis of erythromycin resistance in Streptococcus pneumoniae.
    Electrophoresis. 1999 Aug;20(11):2259-68 PMID: 10493130
  40. Protein microarray detection strategies: focus on direct detection technologies.
    J Immunol Methods. 2004 Jul;290(1-2):121-33 PMID: 15261576
  41. Differential protein expression by Pseudomonas fragi submitted to various stresses.
    Electrophoresis. 1999 Aug;20(11):2204-13 PMID: 10493125
  42. Microbial genomics and the periodic table.
    Appl Environ Microbiol. 2004 Feb;70(2):647-55 PMID: 14766537
  43. Environmental genomics, the big picture?
    FEMS Microbiol Lett. 2004 Feb 16;231(2):153-8 PMID: 15027428
  44. Challenges in applying microarrays to environmental studies.
    Curr Opin Biotechnol. 2002 Jun;13(3):204-7 PMID: 12180093
  45. Progress with proteome projects: why all proteins expressed by a genome should be identified and how to do it.
    Biotechnol Genet Eng Rev. 1996;13:19-50 PMID: 8948108
  46. Culture-independent identification of microorganisms that respond to specified stimuli.
    Appl Environ Microbiol. 1999 Aug;65(8):3398-400 PMID: 10427025
  47. Cloning the soil metagenome: a strategy for accessing the genetic and functional diversity of uncultured microorganisms.
    Appl Environ Microbiol. 2000 Jun;66(6):2541-7 PMID: 10831436
Article Info
Journal
Microbial ecology
Abbr.
Microb Ecol
ISSN
0095-3628
Published
2007-04-00
Epub
2007-00-13
Pages
486-93
Language
English
Region
United States
NLM ID
7500663
Subset
IM
Analysis Services
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