An additional proofreader contributes to DNA replication fidelity in mycobacteria.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39141351.
- Also identified by DOI 10.1073/pnas.2322938121 and PMC identifier 11348249.
- Licence recorded as CC BY-NC-ND.
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Abstract
The removal of mis-incorporated nucleotides by proofreading activity ensures DNA replication fidelity. Whereas the ε-exonuclease DnaQ is a well-established proofreader in the model organism <i>Escherichia coli</i>, it has been shown that proofreading in a majority of bacteria relies on the polymerase and histidinol phosphatase (PHP) domain of replicative polymerase, despite the presence of a DnaQ homolog that is structurally and functionally distinct from <i>E. coli</i> DnaQ. However, the biological functions of this type of noncanonical DnaQ remain unclear. Here, we provide independent evidence that noncanonical DnaQ functions as an additional proofreader for mycobacteria. Using the mutation accumulation assay in combination with whole-genome sequencing, we showed that depletion of DnaQ in <i>Mycolicibacterium smegmatis</i> leads to an increased mutation rate, resulting in AT-biased mutagenesis and increased insertions/deletions in the homopolymer tract. Our results showed that mycobacterial DnaQ binds to the β clamp and functions synergistically with the PHP domain proofreader to correct replication errors. Furthermore, the loss of <i>dnaQ</i> results in replication fork dysfunction, leading to attenuated growth and increased mutagenesis on subinhibitory fluoroquinolones potentially due to increased vulnerability to fork collapse. By analyzing the sequence polymorphism of <i>dnaQ</i> in clinical isolates of <i>Mycobacterium tuberculosis</i> (<i>Mtb</i>), we demonstrated that a naturally evolved DnaQ variant prevalent in <i>Mtb</i> lineage 4.3 may enable hypermutability and is associated with drug resistance. These results establish a coproofreading model and suggest a division of labor between DnaQ and PHP domain proofreader. This study also provides real-world evidence that a mutator-driven evolutionary pathway may exist during the adaptation of <i>Mtb</i>.
Medical subject headings
- DNA Replication