4.6 Article

Rumen Cellulosomics: Divergent Fiber-Degrading Strategies Revealed by Comparative Genome-Wide Analysis of Six Ruminococcal Strains

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PLOS ONE
卷 9, 期 7, 页码 -

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PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.pone.0099221

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资金

  1. Sidney E. Frank Foundation through the Israel Science Foundation (ISF) [24/11]
  2. ISF [1349/13]
  3. Israeli Center of Research Excellence (I-CORE) [152/11]
  4. United States-Israel Binational Science Foundation (BSF), Jerusalem, Israel
  5. Weizmann Institute of Science Alternative Energy Research Initiative (AERI)
  6. Helmsley Foundation
  7. ERA-NET Scheme of the 7th EU Framework Programme European Union
  8. Israel Ministry of Science
  9. Initiative for Future Agriculture and Food Systems
  10. USDA Cooperative State Research, Education, and Extension Service's National Research Initiative Competitive Grants Program [2000-52100-9618, 2001-52100-11330]

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Background: A complex community of microorganisms is responsible for efficient plant cell wall digestion by many herbivores, notably the ruminants. Understanding the different fibrolytic mechanisms utilized by these bacteria has been of great interest in agricultural and technological fields, reinforced more recently by current efforts to convert cellulosic biomass to biofuels. Methodology/Principal Findings: Here, we have used a bioinformatics-based approach to explore the cellulosome-related components of six genomes from two of the primary fiber-degrading bacteria in the rumen: Ruminococcus flavefaciens (strains FD-1, 007c and 17) and Ruminococcus albus (strains 7, 8 and SY3). The genomes of two of these strains are reported for the first time herein. The data reveal that the three R. flavefaciens strains encode for an elaborate reservoir of cohesin-and dockerin-containing proteins, whereas the three R. albus strains are cohesin-deficient and encode mainly dockerins and a unique family of cell-anchoring carbohydrate-binding modules (family 37). Conclusions/Significance: Our comparative genome-wide analysis pinpoints rare and novel strain-specific protein architectures and provides an exhaustive profile of their numerous lignocellulose-degrading enzymes. This work provides blueprints of the divergent cellulolytic systems in these two prominent fibrolytic rumen bacterial species, each of which reflects a distinct mechanistic model for efficient degradation of cellulosic biomass.

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