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Updated: Jun 28, 2026

Sequence-specific and Selective Recognition of Double-stranded RNAs over Single-stranded RNAs by Chemically Modified Peptide Nucleic Acids
Published on: September 21, 2017
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.
Abstract:
The sliding clamp Proliferating Cell Nuclear Antigen (PCNA) functions as a recruiter and organizer of a wide variety of DNA modifying enzymes including nucleases, helicases, polymerases and glycosylases. The 5'-flap endonuclease Fen-1 is essential for Okazaki fragment processing in eukaryotes and archaea, and is targeted to the replication fork by PCNA. Crenarchaeal XPF, a 3'-flap endonuclease, is also stimulated by PCNA in vitro. Using a novel continuous fluorimetric assay, we demonstrate that PCNA activates these two nucleases by fundamentally different mechanisms. PCNA stimulates Fen-1 by increasing the enzyme's binding affinity for substrates, as suggested previously. However, PCNA activates XPF by increasing the catalytic rate constant by four orders of magnitude without affecting the K(M). PCNA may function as a platform upon which XPF exerts force to distort DNA substrates, destabilizing the substrate and/or stabilizing the transition state structure. This suggests that PCNA can function directly in supporting catalysis as an essential cofactor in some circumstances, a new role for a protein that is generally assumed to perform a passive targeting and organizing function in molecular biology. This could provide a mechanism for the exquisite control of nuclease activity targeted to specific circumstances, such as replication forks or damaged DNA with pre-loaded PCNA.
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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