Abstract

DNA polymerase ε (pol ε) is believed to be the leading strand replicase in eukaryotes whereas pols λ and β are thought to be mainly involved in re-synthesis steps of DNA repair. DNA elongation by the human pol ε is halted by an abasic site (apurinic/apyrimidinic (AP) site). We have previously reported that human pols λ, β and η can perform translesion synthesis (TLS) of an AP site in the presence of pol ε. In the case of pol λ and β, this TLS requires the presence of a gap downstream from the product synthetized by the ε replicase. However, since these studies were conducted exclusively with a linear DNA template, we decided to test whether the structure of the template could influence the capacity of the pols ε, λ, β and η to perform TLS of an AP site. Therefore, we have investigated the replication of damaged “minicircle” DNA templates. In addition, replication of circular DNA requires, beyond DNA pols, the processivity clamp PCNA, the clamp loader replication factor C (RFC), and the accessory proteins replication protein A (RPA). Finally we have compared the capacity of unmodified versus monoubiquitinated PCNA in sustaining TLS by pols λ and η on a circular template. Our results indicate that in vitro gap-directed TLS synthesis by pols λ and β in the presence of pol ε, RPA and PCNA is unaffected by the structure of the DNA template. Moreover, monoubiquitination of PCNA does not affect TLS by pol λ while it appears to slightly stimulate TLS by pol η.

Highlights

  • At least three DNA polymerases are required for chromosomal DNA replication in eukaryotic cells: pol a, pol d and pol e

  • Our results indicate that in vitro gap-directed translesion synthesis (TLS) synthesis by pols l and b in the presence of pol e, replication protein A (RPA), replication factor C (RFC) and PCNA is unaffected by the structure of the DNA template and that monoubiquitination of PCNA does not influence TLS by pol l while it appears to stimulate TLS by pol g

  • The E. coli replicase DNA polymerase III holoenzyme showed a limited capacity to replicate through an abasic site only when the lesion was present on a circular DNA substrate [23]

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Summary

Introduction

At least three DNA polymerases (pols) are required for chromosomal DNA replication in eukaryotic cells: pol a, pol d and pol e. Our results indicate that in vitro gap-directed TLS synthesis by pols l and b in the presence of pol e, RPA, RFC and PCNA is unaffected by the structure of the DNA template and that monoubiquitination of PCNA does not influence TLS by pol l while it appears to stimulate TLS by pol g.

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