PCNA stimulates catalysis by structure-specific nucleases using two distinct mechanisms: substrate targeting and

Richard D Hutton1, Jennifer A Roberts, J Carlos Penedo

  • 1Centre for Biomolecular Sciences and School of Physics, University of St Andrews, Fife, UK.

Nucleic Acids Research
|October 25, 2008
PubMed

Insights

Proliferating Cell Nuclear Antigen (PCNA) uniquely activates two nucleases, Fen-1 and XPF, through distinct mechanisms. This reveals a novel catalytic cofactor role for PCNA in DNA repair and replication.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Enzymology

Background:

  • Proliferating Cell Nuclear Antigen (PCNA) is a sliding clamp protein involved in DNA replication and repair.
  • PCNA interacts with various DNA-modifying enzymes, including nucleases, polymerases, and helicases.
  • Fen-1 (5'-flap endonuclease) and XPF (3'-flap endonuclease) are nucleases implicated in DNA processing and are known to interact with PCNA.

Purpose of the Study:

  • To elucidate the distinct mechanisms by which PCNA activates the nucleases Fen-1 and XPF.
  • To investigate the functional role of PCNA beyond its established targeting and organizing functions.
  • To explore the implications of PCNA's cofactor-like activity in regulating nuclease function at DNA replication and repair sites.

Main Methods:

  • Utilized a novel continuous fluorimetric assay to monitor nuclease activity.
  • Quantified the effects of PCNA on enzyme kinetics, including binding affinity (K(M)) and catalytic rate constant (k(cat)).
  • Compared the activation mechanisms of PCNA on Fen-1 and XPF.

Main Results:

  • PCNA enhances Fen-1 activity by increasing its substrate binding affinity.
  • PCNA dramatically increases the catalytic rate constant of XPF by four orders of magnitude, without altering its binding affinity.
  • PCNA may act as a platform to facilitate DNA distortion by XPF, thereby enhancing catalysis.

Conclusions:

  • PCNA employs fundamentally different mechanisms to activate Fen-1 and XPF.
  • PCNA can function as an essential catalytic cofactor, a novel role beyond its organizing function.
  • This cofactor activity provides a mechanism for precise control of nuclease activity in specific cellular contexts like replication forks.

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