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Published on: September 21, 2017
PCNA-coupled p21 degradation after DNA damage: The exception that confirms the rule?
Gastón Soria1, Vanesa Gottifredi
1Fundación Instituto Leloir - CONICET, Universidad de Buenos Aires, Argentina. vgottifredi@leloir.org.ar
Abstract:
While many are the examples of DNA damaging treatments that induce p21 accumulation, the conception of p21 upregulation as the universal response to genotoxic stress has come to an end. Compelling evidences have demonstrated the existence of converging signals that negatively regulate p21 bellow basal levels when replication forks are blocked. Moreover, conclusive reports identified the E3-ligase CRL4(CDT2) (CUL4-DDB1-CDT2) as the enzymatic complex that promotes p21 proteolysis when treatments such as UV irradiation trigger replication fork stress. A pre-requisite for CRL4(CDT2)-driven proteolysis is the interaction of p21 with PCNA. Interestingly as well, CRL4(CDT2)-dependent proteolysis is not limited to p21 and affects other PCNA partners, including the specialized DNA polymerase eta (pol eta). These recent discoveries are particularly intriguing since the UV-induced degradation of p21 has been shown to be required for efficient pol eta recruitment to DNA lesions. Herein we review the findings that lead to the identification of the molecular mechanism that triggers damage-induced PCNA-coupled protein proteolysis. We propose a novel model in which CRL4(CDT2)-dependent protein degradation facilitates a sequential and dynamic exchange between PIP box bearing proteins at stall forks during Translesion DNA synthesis (TLS). Moreover, given the tight spatiotemporal control that CRL4(CDT2)-driven proteolysis is able to confer to PCNA-regulated processes, we discuss the impact that this degradation mechanism might have in other molecular switches associated with the repair of damaged DNA.
Insights
p21 upregulation is not a universal DNA damage response. The E3-ligase CRL4(CDT2) complex degrades p21 and other proteins when replication forks stall, facilitating DNA repair and translesion synthesis.
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Cellular Stress Response
Background:
- p21 accumulation was previously considered a universal response to genotoxic stress.
- Emerging evidence shows p21 is downregulated when replication forks are blocked.
- The E3-ligase CRL4(CDT2) complex mediates p21 degradation under replication stress.
Purpose of the Study:
- To review the molecular mechanisms of damage-induced PCNA-coupled protein proteolysis.
- To present a novel model for CRL4(CDT2)-dependent degradation in translesion DNA synthesis.
- To discuss the broader implications of this degradation mechanism in DNA repair.
Main Methods:
- Review of existing literature on p21 regulation and DNA damage response.
- Analysis of the role of CRL4(CDT2) complex in protein degradation.
- Investigation of the interaction between p21, PCNA, and CRL4(CDT2).
Main Results:
- CRL4(CDT2) targets p21 for proteolysis upon replication fork stress, such as UV irradiation.
- p21 degradation is dependent on its interaction with PCNA.
- CRL4(CDT2) also degrades other PCNA partners, including DNA polymerase eta (pol eta).
- UV-induced p21 degradation is crucial for efficient pol eta recruitment to DNA lesions.
Conclusions:
- CRL4(CDT2)-dependent proteolysis of PCNA partners is a key mechanism in DNA damage response.
- This degradation facilitates dynamic protein exchange at stalled replication forks during translesion DNA synthesis.
- The spatiotemporal control exerted by CRL4(CDT2) may impact other DNA repair pathways.
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