Insights from quantitative metaproteomics and protein-stable isotope probing into microbial ecology

ISME J. 2013 Oct;7(10):1877-85. doi: 10.1038/ismej.2013.78. Epub 2013 May 16.

Abstract

The recent development of metaproteomics has enabled the direct identification and quantification of expressed proteins from microbial communities in situ, without the need for microbial enrichment. This became possible by (1) significant increases in quality and quantity of metagenome data and by improvements of (2) accuracy and (3) sensitivity of modern mass spectrometers (MS). The identification of physiologically relevant enzymes can help to understand the role of specific species within a community or an ecological niche. Beside identification, relative and absolute quantitation is also crucial. We will review label-free and label-based methods of quantitation in MS-based proteome analysis and the contribution of quantitative proteome data to microbial ecology. Additionally, approaches of protein-based stable isotope probing (protein-SIP) for deciphering community structures are reviewed. Information on the species-specific metabolic activity can be obtained when substrates or nutrients are labeled with stable isotopes in a protein-SIP approach. The stable isotopes ((13)C, (15)N, (36)S) are incorporated into proteins and the rate of incorporation can be used for assessing the metabolic activity of the corresponding species. We will focus on the relevance of the metabolic and phylogenetic information retrieved with protein-SIP studies and for detecting and quantifying the carbon flux within microbial consortia. Furthermore, the combination of protein-SIP with established tools in microbial ecology such as other stable isotope probing techniques are discussed.

Publication types

  • Research Support, Non-U.S. Gov't
  • Review

MeSH terms

  • Animals
  • Bacterial Proteins / metabolism*
  • Carbon Isotopes / metabolism
  • Ecology / methods*
  • Humans
  • Isotope Labeling
  • Microbiota / genetics
  • Microbiota / physiology*
  • Nitrogen Isotopes / metabolism
  • Proteomics*

Substances

  • Bacterial Proteins
  • Carbon Isotopes
  • Nitrogen Isotopes