Spatiotemporal regulation of PCNA ubiquitination in damage tolerance pathways

Yuji Masuda1,2, Chikahide Masutani1,2

  • 1Department of Genome Dynamics, Research Institute of Environmental Medicine, Nagoya University, Nagoya, Japan.

Insights

Cells use DNA damage tolerance (DDT) pathways to resume DNA synthesis past lesions. Ubiquitination of proliferating cell nuclear antigen (PCNA) regulates these pathways, influencing the choice between error-prone translesion DNA synthesis (TLS) and error-free homology-dependent repair (HDR).

Area of Science:

  • Molecular Biology
  • Genetics
  • Cell Biology

Background:

  • DNA damage poses a significant threat to genome integrity, often inhibiting DNA synthesis.
  • Cells have evolved DNA damage tolerance (DDT) pathways to resume DNA replication in the presence of DNA lesions.
  • Ubiquitination of proliferating cell nuclear antigen (PCNA) is a key regulatory mechanism in eukaryotic DDT pathways.

Purpose of the Study:

  • To review the species-specific mechanisms regulating PCNA ubiquitination in DDT pathways.
  • To elucidate how cells choose between translesion DNA synthesis (TLS) and homology-dependent repair (HDR).
  • To propose a hypothetical model for spatiotemporal regulation of DDT in human cells.

Main Methods:

  • Review of existing genetic and molecular studies on DNA damage tolerance pathways.
  • Analysis of regulatory mechanisms of PCNA ubiquitination across different species.
  • Comparative analysis of TLS and HDR pathway characteristics.

Main Results:

  • Two main branches of DDT, TLS and HDR, are regulated by PCNA ubiquitination (mono- vs. polyubiquitination).
  • TLS is error-prone due to specialized polymerases, while HDR is theoretically error-free, utilizing accurate polymerases and sister chromatids.
  • Understanding the choice between TLS and HDR is crucial for determining biological outcomes of DNA damage.

Conclusions:

  • The regulation of PCNA ubiquitination dictates the choice between error-prone TLS and error-free HDR.
  • Species-specific mechanisms govern these regulatory processes.
  • A hypothetical model for spatiotemporal regulation of DDT in human cells is presented.

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