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Published on: November 3, 2018
The CcpA protein is necessary for efficient sporulation and enterotoxin gene (cpe) regulation in Clostridium
John Varga1, Veronica L Stirewalt, Stephen B Melville
1Department of Biology, Virginia Polytechnic Institute and State University, Blacksburg, VA 24061, USA.
Abstract:
Clostridium perfringens is the cause of several human diseases, including gas gangrene (clostridial myonecrosis), enteritis necroticans, antibiotic-associated diarrhea, and acute food poisoning. The symptoms of antibiotic-associated diarrhea and acute food poisoning are due to sporulation-dependent production of C. perfringens enterotoxin encoded by the cpe gene. Glucose is a catabolite repressor of sporulation by C. perfringens. In order to identify the mechanism of catabolite repression by glucose, a mutation was introduced into the ccpA gene of C. perfringens by conjugational transfer of a nonreplicating plasmid into C. perfringens, which led to inactivation of the ccpA gene by homologous recombination. CcpA is a transcriptional regulator known to mediate catabolite repression in a number of low-G+C-content gram-positive bacteria, of which C. perfringens is a member. The ccpA mutant strain sporulated at a 60-fold lower efficiency than the wild-type strain in the absence of glucose. In the presence of 5 mM glucose, sporulation was repressed about 2,000-fold in the wild-type strain and 800-fold in the ccpA mutant strain compared to sporulation levels for the same strains grown in the absence of glucose. Therefore, while CcpA is necessary for efficient sporulation in C. perfringens, glucose-mediated catabolite repression of sporulation is not due to the activity of CcpA. Transcription of the cpe gene was measured in the wild-type and ccpA mutant strains grown in sporulation medium by using a cpe-gusA fusion (gusA is an Escherichia coli gene encoding the enzyme beta-glucuronidase). In the exponential growth phase, cpe transcription was two times higher in the ccpA mutant strain than in the wild-type strain. Transcription of cpe was highly induced during the entry into stationary phase in wild-type cells but was not induced in the ccpA mutant strain. Glucose repressed cpe transcription in both the wild-type and ccpA mutant strain. Therefore, CcpA appears to act as a repressor of cpe transcription in exponential growth but is required for efficient sporulation and cpe transcription upon entry into stationary phase. CcpA was also required for maximum synthesis of collagenase (kappa toxin) and acted as a repressor of polysaccharide capsule synthesis in the presence of glucose, but it did not regulate synthesis of the phospholipase PLC (alpha toxin).
Insights
Glucose represses sporulation in Clostridium perfringens. The study found that while CcpA is essential for sporulation, it does not mediate glucose repression, indicating an alternative mechanism for this process in C. perfringens.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Clostridium perfringens causes significant human diseases, including food poisoning and gas gangrene.
- The enterotoxin (Cpe) production, responsible for certain diseases, is linked to bacterial sporulation.
- Glucose is known to repress sporulation in C. perfringens, but the underlying mechanism is unclear.
Purpose of the Study:
- To investigate the role of the CcpA protein in glucose-mediated catabolite repression of sporulation in Clostridium perfringens.
- To elucidate the mechanism by which glucose represses sporulation and Cpe enterotoxin gene (cpe) transcription.
Main Methods:
- A ccpA gene mutant of Clostridium perfringens was created using homologous recombination.
- Sporulation efficiency was compared between wild-type and ccpA mutant strains in the presence and absence of glucose.
- Cpe enterotoxin gene transcription was quantified using a cpe-gusA fusion assay in both strains under different growth conditions.
Main Results:
- The ccpA mutant exhibited significantly reduced sporulation efficiency compared to the wild-type strain, especially in the absence of glucose.
- Glucose repressed sporulation in both wild-type and ccpA mutant strains, but to a lesser extent in the mutant, indicating CcpA is not the sole mediator of glucose repression.
- CcpA acted as a repressor of cpe transcription during the exponential growth phase but was required for its induction during stationary phase entry.
- Glucose repressed cpe transcription in both strains, irrespective of CcpA's presence.
Conclusions:
- CcpA is crucial for efficient sporulation and Cpe enterotoxin gene expression in Clostridium perfringens, particularly upon entry into stationary phase.
- Glucose-mediated catabolite repression of sporulation is not solely dependent on CcpA's activity.
- CcpA plays a dual role, repressing cpe transcription in early growth and facilitating it later, while also influencing other virulence factor synthesis.
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