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Replication Protein A Prohibits Diffusion of the PCNA Sliding Clamp along Single-Stranded DNA
Mark Hedglin1, Stephen J Benkovic1
1Department of Chemistry, The Pennsylvania State University , University Park, Pennsylvania 16802, United States.
Abstract:
The replicative polymerases cannot accommodate distortions to the native DNA sequence such as modifications (lesions) to the native template bases from exposure to reactive metabolites and environmental mutagens. Consequently, DNA synthesis on an afflicted template abruptly stops upon encountering these lesions, but the replication fork progresses onward, exposing long stretches of the damaged template before eventually stalling. Such arrests may be overcome by translesion DNA synthesis (TLS) in which specialized TLS polymerases bind to the resident proliferating cell nuclear antigen (PCNA) and replicate the damaged DNA. Hence, a critical aspect of TLS is maintaining PCNA at or near a blocked primer/template (P/T) junction upon uncoupling of fork progression from DNA synthesis by the replicative polymerases. The single-stranded DNA (ssDNA) binding protein, replication protein A (RPA), coats the exposed template and might prohibit diffusion of PCNA along the single-stranded DNA adjacent to a blocked P/T junction. However, this idea had yet to be directly tested. We recently developed a unique Cy3-Cy5 Forster resonance energy transfer (FRET) pair that directly reports on the occupancy of DNA by PCNA. In this study, we utilized this FRET pair to directly and continuously monitor the retention of human PCNA at a blocked P/T junction. Results from extensive steady state and pre-steady state FRET assays indicate that RPA binds tightly to the ssDNA adjacent to a blocked P/T junction and restricts PCNA to the upstream duplex region by physically blocking diffusion of PCNA along ssDNA.
Insights
Replication protein A (RPA) prevents proliferating cell nuclear antigen (PCNA) from accessing damaged DNA during translesion DNA synthesis (TLS). RPA blocks PCNA diffusion, hindering DNA repair at stalled replication forks.
Area of Science:
- Molecular Biology
- DNA Replication
- Biochemistry
Background:
- Replicative polymerases stall at DNA lesions, halting DNA synthesis.
- Translesion DNA synthesis (TLS) utilizes specialized polymerases to bypass DNA damage.
- Maintaining proliferating cell nuclear antigen (PCNA) at stalled replication forks is crucial for TLS.
Purpose of the Study:
- To investigate the role of replication protein A (RPA) in regulating PCNA localization at blocked primer/template junctions.
- To determine if RPA restricts PCNA diffusion along single-stranded DNA (ssDNA) adjacent to stalled replication forks.
Main Methods:
- Development of a Förster resonance energy transfer (FRET) pair to monitor PCNA occupancy on DNA.
- Utilizing FRET assays to continuously observe human PCNA retention at blocked primer/template junctions.
- Performing steady-state and pre-steady-state FRET experiments.
Main Results:
- RPA binds tightly to ssDNA near blocked primer/template junctions.
- RPA restricts PCNA to the upstream duplex region.
- RPA physically impedes PCNA diffusion along ssDNA.
Conclusions:
- RPA plays a critical role in regulating PCNA access to stalled replication forks.
- RPA-mediated restriction of PCNA prevents its diffusion along ssDNA, impacting TLS.
- This mechanism highlights RPA's function in coordinating DNA repair processes.
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