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Published on: March 3, 2023
Identification of Genes Involved in Bacteriostatic Antibiotic-Induced Persister Formation
Peng Cui1,2, Hongxia Niu3, Wanliang Shi2
1Key Lab of Molecular Virology, Institute of Medical Microbiology, Department of Infectious Diseases, Huashan Hospital, Fudan University, Shanghai, China.
Abstract:
Persister cells are metabolically quiescent multi-drug tolerant fraction of a genetically sensitive bacterial population and are thought to be responsible for relapse of many persistent infections. Persisters can be formed naturally in the stationary phase culture, and also can be induced by bacteriostatic antibiotics. However, the molecular basis of bacteriostatic antibiotic induced persister formation is unknown. Here, we established a bacteriostatic antibiotic induced persister model and screened the Escherichia coli single gene deletion mutant library for mutants with defect in rifampin or tetracycline induced persistence to ofloxacin. Thirsty-seven and nine genes were found with defects in rifampin- and tetracycline-induced persister formation, respectively. Six mutants were found to overlap in both rifampin and tetracycline induced persister screens: recA, recC, ruvA, uvrD, fis, and acrB. Interestingly, four of these mutants (recA, recC, ruvA, and uvrD) mapped to DNA repair pathway, one mutant mapped to global transcriptional regulator (fis) and one to efflux (acrB). The stationary phase culture of the identified mutants and parent strain BW25113 were subjected to different antibiotics including ofloxacin, ampicillin, gentamicin, and stress conditions including starvation and acid pH 4.0. All the six mutants showed less tolerance to ofloxacin, but only some of them were more sensitive to other specific stress conditions. Complementation of five of the six common mutants restored the persister level to that of the parent strain in both stationary phase and static antibiotic-induced conditions. In addition to the DNA repair pathways shared by both rifampin and tetracycline induced persisters, genes involved in rifampin-induced persisters map also to transporters, LPS biosynthesis, flagella biosynthesis, metabolism (folate and energy), and translation, etc. These findings suggest that persisters generated by different ways may share common mechanisms of survival, and also shed new insight into the molecular basis of static antibiotic induced antagonism of cidal antibiotics.
Insights
Bacteriostatic antibiotics induce bacterial persister cells, crucial for persistent infections. Researchers identified key genes, including those in DNA repair, involved in this process, revealing shared survival mechanisms.
Area of Science:
- Microbiology
- Bacterial Persistence
- Antibiotic Tolerance
Background:
- Persister cells are a dormant, multi-drug tolerant subpopulation of bacteria.
- These cells are responsible for the relapse of persistent infections.
- The molecular mechanisms underlying bacteriostatic antibiotic-induced persister formation remain largely unknown.
Purpose of the Study:
- To investigate the molecular basis of persister cell formation induced by bacteriostatic antibiotics.
- To identify genes essential for rifampin or tetracycline-induced persistence to ofloxacin in *Escherichia coli*.
Main Methods:
- Established a bacteriostatic antibiotic-induced persister model.
- Screened the *Escherichia coli* single gene deletion mutant library.
- Assessed mutant tolerance to various antibiotics and stress conditions.
Main Results:
- Identified 37 genes for rifampin-induced and 9 for tetracycline-induced persister defects.
- Six overlapping genes (recA, recC, ruvA, uvrD, fis, acrB) were identified.
- Four overlapping genes are involved in DNA repair, one in transcriptional regulation, and one in efflux.
- All six mutants showed reduced tolerance to ofloxacin.
Conclusions:
- Bacteriostatic antibiotic-induced persister formation involves DNA repair, transcriptional regulation, and efflux mechanisms.
- Different induction methods for persister cells may share common survival pathways.
- Findings provide new insights into the molecular basis of antibiotic antagonism.
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