Type IV Pili-Associated Secretion of a Biofilm Matrix Protein From Clostridium perfringens That Forms Intermolecular
Sarah E Kivimaki1, Samantha Dempsey1, Collette Camper1
1Department of Biological Sciences, Virginia Tech, Blacksburg, Virginia, USA.
Abstract:
Clostridium perfringens is a gram-positive, anaerobic, spore-forming bacterial pathogen of humans and animals. C. perfringens also produces type IV pili (T4P) and has two complete sets of T4P-associated genes, one of which has been shown to produce surface pili needed for cell adherence. One hypothesis about the second set of T4P genes is that they comprise a type II secretion system (TTSS) like those found in gram-negative bacteria, but for gram-positive bacteria, the TTSS would aid transit across the thick peptidoglycan (PG) layer. The secretome of mutants lacking type IV pilins was examined, and a single protein, BsaC (CPE0517), was identified as being dependent on pilin PilA3 for secretion. The bsaC gene is in an operon with genes encoding a SipW signal peptidase and two putative biofilm matrix proteins, BsaA and BsaB, both of which have remote homology to Bacillus subtilis biofilm protein TasA. Since BsaA forms long oligomers that are secreted, we analyzed BsaA monomer interactions with de novo modeling. These models projected that the monomers formed isopeptide bonds as part of a donor strand exchange process. Mutations in residues predicted to form the isopeptide bonds led to the loss of oligomerization, supporting an exchange and lock mechanism, and isopeptide bonds were detected by mass spectrometry methods. Phylogenetic analysis showed the BsaA family of proteins is widespread among bacteria and archaea, but only a subset is predicted to form isopeptide bonds.
Insights
Clostridium perfringens utilizes a second set of type IV pili (T4P) genes, potentially forming a novel secretion system. This system facilitates the secretion of BsaA, a biofilm matrix protein, through isopeptide bond formation.
Area of Science:
- Microbiology
- Molecular Biology
- Structural Biology
Background:
- Clostridium perfringens is a significant bacterial pathogen.
- The bacterium possesses two distinct type IV pili (T4P) gene sets.
- One T4P set mediates adherence; the second's function, possibly a secretion system, is under investigation.
Purpose of the Study:
- To investigate the function of the second set of T4P-associated genes in C. perfringens.
- To identify proteins secreted via this putative system.
- To characterize the structure and assembly mechanism of the secreted biofilm matrix protein BsaA.
Main Methods:
- Secretome analysis of T4P mutants.
- Gene knockout studies.
- De novo protein modeling.
- Mass spectrometry.
- Phylogenetic analysis.
Main Results:
- A novel secreted protein, BsaC, was identified and found to be dependent on PilA3 for secretion.
- The bsaC gene is part of an operon including genes for a signal peptidase and putative biofilm proteins BsaA and BsaB.
- BsaA forms oligomers through a mechanism involving isopeptide bonds, confirmed by modeling and mass spectrometry.
- The BsaA protein family is widespread, with a subset capable of forming isopeptide bonds.
Conclusions:
- C. perfringens employs a second T4P system, potentially a type II secretion system (TTSS) adapted for Gram-positive bacteria.
- This system secretes BsaA, a biofilm matrix protein that assembles via isopeptide bonds.
- The findings reveal a novel secretion mechanism and protein assembly in bacteria.
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