Replisome-mediated translesion synthesis and leading strand template lesion skipping are competing bypass mechanisms Journal Article


Authors: Gabbai, C. B.; Yeeles, J. T. P.; Marians, K. J.
Article Title: Replisome-mediated translesion synthesis and leading strand template lesion skipping are competing bypass mechanisms
Abstract: A number of different enzymatic pathways have evolved to ensure that DNA replication can proceed past template base damage. These pathways include lesion skipping by the replisome, replication fork regression followed by either correction of the damage and origin-independent replication restart or homologous recombination-mediated restart of replication downstream of the lesion, and bypass of the damage by a translesion synthesis DNA polymerase. We report here that of two translesion synthesis polymerases tested, only DNA polymerase IV, not DNA polymerase II, could engage productively with the Escherichia coli replisome to bypass leading strand template damage, despite the fact that both enzymes are shown to be interacting with the replicase. Inactivation of the 3′3→′ proofreading exonuclease of DNA polymerase II did not enable bypass. Bypass by DNA polymerase IV required its ability to interact with the β clamp and act as a translesion polymerase but did not require its "little finger" domain, a secondary region of interaction with the β clamp. Bypass by DNA polymerase IV came at the expense of the inherent leading strand lesion skipping activity of the replisome, indicating that they are competing reactions.
Keywords: controlled study; unclassified drug; dna polymerase; dna replication; dna synthesis; dna damage; homologous recombination; dna; escherichia coli; catalysis; dna replications; exonuclease; replication fork; polymers; dna directed dna polymerase alpha; dna template; replisome; translesion synthesis; article; enzymatic pathways; translesion synthesis polymerase; dna polymerase iv
Journal Title: Journal of Biological Chemistry
Volume: 289
Issue: 47
ISSN: 0021-9258
Publisher: American Society for Biochemistry and Molecular Biology  
Date Published: 2014-11-21
Start Page: 32811
End Page: 32823
Language: English
DOI: 10.1074/jbc.M114.613257
PROVIDER: scopus
PMCID: PMC4239630
PUBMED: 25301949
DOI/URL:
Notes: Export Date: 2 January 2015 -- Source: Scopus
Altmetric
Citation Impact
BMJ Impact Analytics
MSK Authors
  1. Joseph Thomas Pinkerton Yeeles
    7 Yeeles
  2. Kenneth Marians
    138 Marians
  3. Carolina Birmann Gabbai
    2 Gabbai