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Evidence for stable messenger ribonucleic acid during sporulation and enterotoxin synthesis by Clostridium
Abstract:
Stable messenger ribonucleic acid (mRNA) was shown to be involved in both enterotoxin synthesis and synthesis of other spore coat proteins in Clostridium perfringens. When used at a concentration that inhibited [14C]uracil incorporation, rifampin, a specific inhibitor of deoxyribonucleic acid-dependent RNA polymerase, prevented incorporation of a mixture of labeled amnoo acids by 3-h sporulating cells. At that time, enterotoxin protein was first detectable and cells were primarily at stage II or III of sporulation. When rifampin or streptolydigin was added to 5-h sporulating cells, which were primarily at stage IV or V and had significant toxin levels, incorporation of labeled amino acids continued through 30 min despite its presence. Rifampin also failed to prevent the specific synthesis of enterotoxin, a structural protein of the spore coat. The half-life of enterotoxin RNA was estimated to be at least 58 min. When cell extracts from 5-h sporulating cells that had been exposed to 3H-labeled amino acids for 10 min were subjected to electrophoresis on polyacrylamide gels and the gels were subsequently analyzed for radioactivity, two major peaks of radioactivity were obtained. The two peaks corresponded to enterotoxin and another spore coat protein(s). Similar results were obtained when the cells had been preincubated for 60 min with rifampin before label addition, indicating the functioning of stable mRNA.
Insights
Stable messenger RNA (mRNA) in Clostridium perfringens is crucial for enterotoxin and spore coat protein synthesis. This study demonstrates that this mRNA is stable, persisting even when RNA synthesis is inhibited.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Clostridium perfringens produces enterotoxin and spore coat proteins during sporulation.
- The role of stable messenger RNA (mRNA) in the synthesis of these proteins is not fully understood.
Purpose of the Study:
- To investigate the involvement and stability of mRNA in Clostridium perfringens enterotoxin and spore coat protein synthesis.
- To determine the half-life of enterotoxin mRNA.
Main Methods:
- Utilized rifampin, a deoxyribonucleic acid-dependent RNA polymerase inhibitor, to block new RNA synthesis.
- Assessed the incorporation of labeled amino acids into proteins in sporulating cells at different stages.
- Employed polyacrylamide gel electrophoresis to analyze newly synthesized proteins and estimate mRNA half-life.
Main Results:
- Rifampin inhibited protein synthesis in early sporulating cells (stages II-III) but not in later stages (stages IV-V).
- Enterotoxin and other spore coat proteins continued to be synthesized in the presence of rifampin in later-stage cells.
- The estimated half-life of enterotoxin mRNA was at least 58 minutes, indicating its stability.
Conclusions:
- Stable mRNA plays a significant role in the synthesis of enterotoxin and spore coat proteins in Clostridium perfringens.
- This stable mRNA allows for continued protein production even when transcription is inhibited.