Genetic analysis of epistasis between nucleotide excision repair and homologous recombination in the recovery of persisters after fluoroquinolone treatment

Stationary-phase cultures contain high abundances of persisters, which are bacterial cells that are hyper-tolerant to antibiotics due to phenotypic reasons. Fluoroquinolones (FQs) are one of the most effective antibiotic classes for the treatment of non-growing bacteria, such as those found in stationary-phase cultures, and persisters in those populations have been found to survive FQ treatment by repairing the DNA damage caused by the antibiotic rather than by avoiding damage through inactivity. Interestingly, previous work demonstrated that transient growth inhibition after the conclusion of FQ treatment significantly increased persister levels from stationary-phase Escherichia coli populations if recA , a mediator of homologous recombination (HR), or uvrD , a component of nucleotide excision repair (NER), were present. Here, we sought to identify additional epistatic interaction partners in that persister recovery network by deleting DNA repair enzymes known to interact with RecA or UvrD. We found that uvrA , uvrB , and mfd also epistatically interact with recA in FQ persister recovery, whereas recB and recC are additional epistatic interaction partners of uvrD . While these results indicated that HR and NER can contribute to persister recovery, different combinations of genetic mutants suggested that the phenomenon is more nuanced than compensation for loss of one repair pathway by another. Specifically, loss of recA had farther reaching epistatic consequences than loss of other HR genes, and loss of uvrD had a greater impact on the network than any other NER gene. Delving deeper into the roles of RecA and UvrD, we found that the recombination function of RecA, via RecA(N304D), and helicase function of UvrD, via UvrD(R284A), were required for their participation in FQ persister recovery. Collectively, the data presented here deepen understanding of the roles of HR and NER machinery in the recovery FQ persisters and further emphasize the important roles of RecA and UvrD in this phenomenon.

Authors

Institutions

Publication Details

Journal
PLoS Genetics
Published
2026-09-21
DOI
https://doi.org/10.1371/journal.pgen.1012305
Primary Topic
DNA Repair Mechanisms
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Genetic analysis of epistasis between nucleotide excision repair and homologous recombination in the recovery of persisters after fluoroquinolone treatment

Mark P. Brynildsen, Annabel S. Lemma, Nashaly Soto Echevarria
PLoS Genetics
DNA Repair Mechanisms
article

Genetic analysis of epistasis between nucleotide excision repair and homologous recombination in the recovery of persisters after fluoroquinolone treatment

Mark P. Brynildsen, Annabel S. Lemma, Nashaly Soto Echevarria
article en

Abstract

Stationary-phase cultures contain high abundances of persisters, which are bacterial cells that are hyper-tolerant to antibiotics due to phenotypic reasons. Fluoroquinolones (FQs) are one of the most effective antibiotic classes for the treatment of non-growing bacteria, such as those found in stationary-phase cultures, and persisters in those populations have been found to survive FQ treatment by repairing the DNA damage caused by the antibiotic rather than by avoiding damage through inactivity. Interestingly, previous work demonstrated that transient growth inhibition after the conclusion of FQ treatment significantly increased persister levels from stationary-phase Escherichia coli populations if recA , a mediator of homologous recombination (HR), or uvrD , a component of nucleotide excision repair (NER), were present. Here, we sought to identify additional epistatic interaction partners in that persister recovery network by deleting DNA repair enzymes known to interact with RecA or UvrD. We found that uvrA , uvrB , and mfd also epistatically interact with recA in FQ persister recovery, whereas recB and recC are additional epistatic interaction partners of uvrD . While these results indicated that HR and NER can contribute to persister recovery, different combinations of genetic mutants suggested that the phenomenon is more nuanced than compensation for loss of one repair pathway by another. Specifically, loss of recA had farther reaching epistatic consequences than loss of other HR genes, and loss of uvrD had a greater impact on the network than any other NER gene. Delving deeper into the roles of RecA and UvrD, we found that the recombination function of RecA, via RecA(N304D), and helicase function of UvrD, via UvrD(R284A), were required for their participation in FQ persister recovery. Collectively, the data presented here deepen understanding of the roles of HR and NER machinery in the recovery FQ persisters and further emphasize the important roles of RecA and UvrD in this phenomenon.

PLoS GeneticsVol. 22(9)
Princeton University (US)
Openalex Percentile: Top 18%
DNA Repair Mechanisms
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.