4.7 Article

Novel Twin-Arginine Translocation Pathway-Dependent Phenotypes of Bacillus subtilis Unveiled by Quantitative Proteomics

期刊

JOURNAL OF PROTEOME RESEARCH
卷 12, 期 2, 页码 796-807

出版社

AMER CHEMICAL SOC
DOI: 10.1021/pr300866f

关键词

Bacillus subtilis; quantitative proteomics; metabolic labeling; twin-arginine translocation; QcrA; biofilm

资金

  1. CEU projects [LSHM-CT-2006-019064, LSHG-CT-2006-037469, PITN-GA-2008-215524]
  2. European Science Foundation under the EUROCORES Programme EuroSCOPE from the Research Council for Earth and Life Sciences of The Netherlands Organization for Scientific Research (NWO-ALW) [04-EScope 01-011]
  3. NWO-ALW
  4. DFG [SFB/TR34]
  5. Bundesministerium fur Bildung und Forschung
  6. Excellence Initiative and FOR585

向作者/读者索取更多资源

The twin-arginine translocation (Tat) pathway is known to translocate fully folded proteins across bacterial, archaeal, and organellar membranes. To date, the mechanisms involved in processing, proofreading, and quality control of Tat substrates have remained largely elusive. Bacillus subtilis is an industrially relevant Gram-positive model bacterium. The Tat pathway in B. subtilis differs from that of other well-studied organisms in that it is composed of two complexes operating in parallel. To obtain a better understanding of this pathway in B. subtilis and to identify Tat-associated proteins, the B. subtilis 'Tat proteome' was investigated by quantitative proteomics. Metabolically labeled proteins from cytoplasmic, membrane, and extracellular fractions were analyzed by LC MS/MS. Changes in the amounts of identified peptides allowed for quantitative comparisons of their abundance in tat mutant strains. The observed differences were suggestive of indirect or direct protein protein relationships. The rich data set generated was then approached in hypothesis-driving and hypothesis-driven manners. The hypothesis-driving approach led to the identification of a novel delayed biofilm phenotype of certain tat mutant strains, whereas the hypothesis-driven approach identified the membrane protein QcrA as a new Tat substrate of B. subtilis. Thus, our quantitative proteomics analyses have unveiled novel Tat pathway-dependent phenotypes in Bacillus.

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