Genome-wide transcription-coupled repair in <i>Escherichia coli</i> is mediated by the Mfd translocase.
basic_science · Level V
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- Record sourced from PubMed, PMID 28167766.
- Also identified by DOI 10.1073/pnas.1700230114 and PMC identifier 5358382.
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Abstract
We used high-throughput sequencing of short, cyclobutane pyrimidine dimer-containing ssDNA oligos generated during repair of UV-induced damage to study that process at both mechanistic and systemic levels in <i>Escherichia coli</i> Numerous important insights on DNA repair were obtained, bringing clarity to the respective roles of UvrD helicase and Mfd translocase in repair of UV-induced damage. Mechanistically, experiments showed that the predominant role of UvrD in vivo is to unwind the excised 13-mer from dsDNA and that mutation of <i>uvrD</i> results in remarkable protection of that oligo from exonuclease activity as it remains hybridized to the dsDNA. Genome-wide analysis of the transcribed strand/nontranscribed strand (TS/NTS) repair ratio demonstrated that deletion of <i>mfd</i> globally shifts the distribution of TS/NTS ratios downward by a factor of about 2 on average for the most highly transcribed genes. Even for the least transcribed genes, Mfd played a role in preferential repair of the transcribed strand. On the other hand, mutation of <i>uvrD</i>, if anything, slightly pushed the distribution of TS/NTS ratios to higher ratios. These results indicate that Mfd is the transcription repair-coupling factor whereas UvrD plays a role in excision repair by aiding the catalytic turnover of excision repair proteins.
Medical subject headings
- Bacterial Proteins
- DNA Repair
- Escherichia coli
- Transcription Factors