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Published on: November 16, 2016
Deoxyribonucleic acid degradation and the lethal effect by myxin in Escherichia coli
Abstract:
Exposure of Escherichia coli 15T(-) cells to the antibiotic myxin results in the inhibition of deoxyribonucleic acid (DNA) biosynthesis, degradation of intracellular DNA, and death of the cells. Each of these effects was markedly enhanced when protein synthesis was simultaneously inhibited by chloramphenicol. In the continued presence of chloramphenicol, a brief (1 min) exposure to myxin resulted in a rate of DNA degradation and cell death equivalent to that found in the continued presence of myxin alone. Single-strand breaks were present in the DNA of cells exposed to myxin, but when chloramphenicol was also present the breaks were found much earlier. Degradation of DNA in cells exposed to myxin was found to be distributed randomly in both strands and extended over the genome with no restriction to the vicinity of the replication point. There was no release of DNA from its attachment to the cellular membrane in myxin-exposed cells. The possibility that the chloramphenicol effect is due to the inhibition of repair enzyme synthesis which is stimulated by exposure of the cells to myxin is discussed. These data indicate that the extent of the lethal and metabolic damage to the cells by an exposure to myxin represents the result of competition between damage to and repair of cellular DNA.
Insights
The antibiotic myxin damages bacterial deoxyribonucleic acid (DNA), causing cell death. Inhibiting protein synthesis with chloramphenicol enhances this DNA damage and cell death, suggesting a competition between damage and repair processes.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- The antibiotic myxin affects bacterial deoxyribonucleic acid (DNA) biosynthesis and integrity.
- Simultaneous inhibition of protein synthesis can alter cellular responses to antibiotics.
Purpose of the Study:
- To investigate the combined effects of myxin and chloramphenicol on Escherichia coli.
- To elucidate the mechanisms underlying myxin-induced DNA damage and cell death.
Main Methods:
- Exposure of Escherichia coli 15T(-) cells to myxin and chloramphenicol.
- Analysis of DNA biosynthesis, DNA degradation, and cell viability.
- Detection of DNA strand breaks.
Main Results:
- Myxin inhibited DNA biosynthesis, caused DNA degradation, and led to cell death.
- Chloramphenicol significantly enhanced myxin's effects on DNA degradation and cell death.
- Single-strand DNA breaks occurred earlier and were more extensive when both agents were present.
- DNA degradation was random across the genome, not localized to replication points.
Conclusions:
- Myxin-induced cellular damage involves a competition between DNA damage and repair mechanisms.
- Chloramphenicol may inhibit the synthesis of DNA repair enzymes, exacerbating myxin toxicity.
- These findings provide insight into antibiotic-induced cellular damage and potential resistance mechanisms.
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