Proteomic analysis of four Clostridium botulinum strains identifies proteins that link biological responses to proteomic signatures

PLoS One. 2018 Oct 15;13(10):e0205586. doi: 10.1371/journal.pone.0205586. eCollection 2018.

Abstract

Microorganisms alter gene and protein expression in response to environmental conditions to adapt and survive. Whereas the genetic composition of a microbe represents an organism's biological potential, the proteins expressed provide a functional readout of the organism's response to the environment. Understanding protein expression patterns in response to specific environmental conditions furthers fundamental knowledge about a microbe, which can be especially useful for understudied organisms such as Clostridium botulinum examined herein. In addition, protein expression patterns that reproducibly occur in certain growth conditions hold potential in fields such as microbial forensics, in which determination of conditions in which an unknown possible biothreat sample had been grown may be important. To investigate the identity and reproducibility of protein profile patterns for varied strains, we defined the proteomic profiles of four Group I strains of Clostridium botulinum, a Category A biothreat agent and the organism responsible for the production of the botulinum neurotoxin (BoNT), in two different culture media grown for five days. The four C. botulinum strains produced one of three neurotoxins (BoNT/A, /B, or /F), and their protein profiles were compared to that of a fifth non-toxigenic strain of C. sporogenes. These strains each had DNA sequences available to assist in accurate protein identification. Differing culture growth phase, bacterial strain, and growth medium resulted in reproducible protein profiles, which were used to calculate relative protein abundance ratios as an internally normalized metric of microbial growth in varying conditions. The resulting protein profiles provide functional information about how four Group I C. botulinum strains and a C. sporogenes strain respond to the culture environment during growth and explores the feasibility of using these proteins to characterize unknown samples.

Publication types

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

MeSH terms

  • Botulinum Toxins / genetics
  • Botulinum Toxins / metabolism*
  • Cell Culture Techniques
  • Clostridium botulinum / genetics
  • Clostridium botulinum / growth & development
  • Clostridium botulinum / metabolism*
  • Culture Media / analysis
  • Gene Expression
  • Phylogeny
  • Polymorphism, Single Nucleotide
  • Proteome
  • Proteomics
  • Species Specificity

Substances

  • Culture Media
  • Proteome
  • Botulinum Toxins

Grants and funding

Funding for this work was provided by the Department of Homeland Security Science and Technology Directorate (https://www.dhs.gov/science-and-technology) under contract HSHQPM-10-X-00077/4 to Pacific Northwest National Laboratory. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.