A multilayered repair system protects the mycobacterial chromosome from endogenous and antibiotic-induced oxidative damage Journal Article


Authors: Dupuy, P.; Howlader, M.; Glickman, M. S.
Article Title: A multilayered repair system protects the mycobacterial chromosome from endogenous and antibiotic-induced oxidative damage
Abstract: Oxidative damage to DNA is a threat to the genomic integrity and coding accuracy of the chromosomes of all living organisms. Guanine is particularly susceptible to oxidation, and 8-oxo-dG (OG), when produced in situ or incorporated by DNA polymerases, is highly mutagenic due to mispairing with adenine. In many bacteria, defense against OG depends on MutT enzymes, which sanitize OG in the nucleotide pool, and the MutM/Y system, which counteracts OG in chromosomal DNA. In Escherichia coli, antibiotic lethality has been linked to oxidative stress and the downstream consequences of OG processing. However, in mycobacteria, the role of these systems in genomic integrity and antibiotic lethality is not understood, in part because mycobacteria encode four MutT enzymes and two MutMs, suggesting substantial redundancy. Here, we definitively probe the role of OG handling systems in mycobacteria. We find that, although MutT4 is the only MutT enzyme required for resistance to oxidative stress, this effect is not due to OG processing. We find that the dominant system that defends against OG-mediated mutagenesis is MutY/MutM1, and this system is dedicated to in situ chromosomal oxidation rather than correcting OG incorporated by accessory polymerases (DinB1/DinB2/DinB3/DnaE2). In addition, we uncover that mycobacteria resist antibiotic lethality through nucleotide sanitization by MutTs, and in the absence of this system, accessory DNA polymerases and MutY/M contribute to antibiotic-induced lethality. These results reveal a complex, multitiered system of OG handling in mycobacteria with roles in oxidative stress resistance, mutagenesis, and antibiotic lethality.
Keywords: dna damage; mutagenesis; antibiotic tolerance
Journal Title: Proceedings of the National Academy of Sciences of the United States of America
Volume: 117
Issue: 32
ISSN: 0027-8424
Publisher: National Academy of Sciences  
Date Published: 2020-08-11
Start Page: 19517
End Page: 19527
Language: English
DOI: 10.1073/pnas.2006792117
PUBMED: 32727901
PROVIDER: scopus
PMCID: PMC7431094
DOI/URL:
Notes: Article -- Source: Scopus
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  1. Michael Glickman
    109 Glickman
  2. Pierre Dupuy
    5 Dupuy