Direct visualization of translesion DNA synthesis polymerase IV at the replisome Journal Article


Authors: Tuan, P. M.; Gilhooly, N. S.; Marians, K. J.; Kowalczykowski, S. C.
Article Title: Direct visualization of translesion DNA synthesis polymerase IV at the replisome
Abstract: In bacterial cells, DNA damage tolerance is manifested by the action of translesion DNA polymerases that can synthesize DNA across template lesions that typically block the replicative DNA polymerase III. It has been suggested that one of these translesion DNA synthesis DNA polymerases, DNA polymerase IV, can either act in concert with the replisome, switching places on the β sliding clamp with DNA polymerase III to bypass the template damage, or act subsequent to the replisome skipping over the template lesion in the gap in nascent DNA left behind as the replisome continues downstream. Evidence exists in support of both mechanisms. Using single-molecule analyses, we show that DNA polymerase IV associates with the replisome in a concentration-dependent manner and remains associated over long stretches of replication fork progression under unstressed conditions. This association slows the replisome, requires DNA polymerase IV binding to the β clamp but not its catalytic activity, and is reinforced by the presence of the γ subunit of the β clamp-loading DnaX complex in the DNA polymerase III holoenzyme. Thus, DNA damage is not required for association of DNA polymerase IV with the replisome. We suggest that under stress conditions such as induction of the SOS response, the association of DNA polymerase IV with the replisome provides both a surveillance/bypass mechanism and a means to slow replication fork progression, thereby reducing the frequency of collisions with template damage and the overall mutagenic potential.
Keywords: dna replication; dna repair; dna; dna polymerase beta; translesion dna synthesis; dna-directed dna polymerase; dna directed dna polymerase beta; replisome; dna directed dna polymerase gamma; dna directed dna polymerase; holoenzyme; dna polymerase iii; holoenzymes; single-molecule visualization
Journal Title: Proceedings of the National Academy of Sciences of the United States of America
Volume: 119
Issue: 39
ISSN: 0027-8424
Publisher: National Academy of Sciences  
Date Published: 2022-01-01
Start Page: e2208390119
Language: English
DOI: 10.1073/pnas.2208390119
PUBMED: 36122225
PROVIDER: scopus
PMCID: PMC9522359
DOI/URL:
Notes: Article -- Export Date: 3 October 2022 -- Source: Scopus
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  1. Kenneth Marians
    138 Marians