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Detecting Cortex Fragments During Bacterial Spore Germination
Published on: June 25, 2016
The Conserved Spore Coat Protein SpoVM Is Largely Dispensable in Clostridium difficile Spore Formation
John W Ribis1,2, Priyanka Ravichandran2, Emily E Putnam2
1Department of Molecular Biology and Microbiology, Tufts University School of Medicine, Boston, Massachusetts, USA.
Abstract:
The spore-forming bacterial pathogen Clostridium difficile is a leading cause of health care-associated infections in the United States. In order for this obligate anaerobe to transmit infection, it must form metabolically dormant spores prior to exiting the host. A key step during this process is the assembly of a protective, multilayered proteinaceous coat around the spore. Coat assembly depends on coat morphogenetic proteins recruiting distinct subsets of coat proteins to the developing spore. While 10 coat morphogenetic proteins have been identified in Bacillus subtilis, only two of these morphogenetic proteins have homologs in the Clostridia: SpoIVA and SpoVM. C. difficile SpoIVA is critical for proper coat assembly and functional spore formation, but the requirement for SpoVM during this process was unknown. Here, we show that SpoVM is largely dispensable for C. difficile spore formation, in contrast with B. subtilis. Loss of C. difficile SpoVM resulted in modest decreases (~3-fold) in heat- and chloroform-resistant spore formation, while morphological defects such as coat detachment from the forespore and abnormal cortex thickness were observed in ~30% of spoVM mutant cells. Biochemical analyses revealed that C. difficile SpoIVA and SpoVM directly interact, similarly to their B. subtilis counterparts. However, in contrast with B. subtilis, C. difficile SpoVM was not essential for SpoIVA to encase the forespore. Since C. difficile coat morphogenesis requires SpoIVA-interacting protein L (SipL), which is conserved exclusively in the Clostridia, but not the more broadly conserved SpoVM, our results reveal another key difference between C. difficile and B. subtilis spore assembly pathways. IMPORTANCE The spore-forming obligate anaerobe Clostridium difficile is the leading cause of antibiotic-associated diarrheal disease in the United States. When C. difficile spores are ingested by susceptible individuals, they germinate within the gut and transform into vegetative, toxin-secreting cells. During infection, C. difficile must also induce spore formation to survive exit from the host. Since spore formation is essential for transmission, understanding the basic mechanisms underlying sporulation in C. difficile could inform the development of therapeutic strategies targeting spores. In this study, we determine the requirement of the C. difficile homolog of SpoVM, a protein that is essential for spore formation in Bacillus subtilis due to its regulation of coat and cortex formation. We observed that SpoVM plays a minor role in C. difficile spore formation, in contrast with B. subtilis, indicating that this protein would not be a good target for inhibiting spore formation.
Insights
Clostridium difficile SpoVM is largely dispensable for spore formation, unlike in Bacillus subtilis. This finding suggests SpoVM is not a viable target for inhibiting C. difficile spore development.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Clostridium difficile is a major cause of health care-associated infections.
- Spore formation is essential for C. difficile transmission and survival.
- SpoIVA and SpoVM are key proteins in Bacillus subtilis spore coat assembly.
Purpose of the Study:
- To investigate the role of SpoVM in Clostridium difficile spore formation.
- To compare C. difficile SpoVM function with its Bacillus subtilis homolog.
- To assess SpoVM as a potential therapeutic target for C. difficile.
Main Methods:
- Construction and analysis of a C. difficile spoVM mutant.
- Assessment of spore formation, heat, and chloroform resistance.
- Morphological analysis using microscopy.
- Biochemical interaction studies between C. difficile SpoIVA and SpoVM.
Main Results:
- SpoVM is largely dispensable for C. difficile spore formation, with only a ~3-fold decrease in resistant spores.
- Approximately 30% of spoVM mutant cells showed morphological defects in spore coat and cortex.
- C. difficile SpoIVA and SpoVM interact directly, but SpoVM is not essential for SpoIVA encasement of the forespore.
Conclusions:
- C. difficile SpoVM plays a minor role in spore formation, contrasting with its essential role in B. subtilis.
- The C. difficile spore assembly pathway differs from B. subtilis, involving SipL instead of SpoVM for SpoIVA function.
- SpoVM is unlikely to be an effective therapeutic target for inhibiting C. difficile spore formation.
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