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p21CDKN1A participates in base excision repair by regulating the activity of poly(ADP-ribose) polymerase-1
Ornella Cazzalini1, Francesca Donà, Monica Savio
1Dipartimento di Medicina Sperimentale, Università di Pavia, Pavia, Italy.
Abstract:
The cell cycle inhibitor p21(CDKN1A) has been shown to participate in nucleotide excision repair by interacting with PCNA. Here we have investigated whether p21 plays a role in base excision repair (BER), by analyzing p21 interactions with BER factors, and by assessing the response of p21(-/-) human fibroblasts to DNA damage induced by alkylating agents. Absence of p21 protein resulted in a higher sensitivity to alkylation-induced DNA damage, as indicated by reduced clonogenic efficiency, defective DNA repair (assessed by the comet test), and by persistence of histone H2AX phosphorylation. To elucidate the mechanisms at the basis of the function of p21 in BER, we focused on its interaction with poly(ADP-ribose) polymerase-1 (PARP-1), an important player in this repair process. p21 was found to bind the automodification/DNA binding domain of PARP-1, although some interaction occurred also with the catalytic domain after DNA damage. This association was necessary to regulate PARP-1 activity since poly(ADP-ribosylation) induced by DNA damage was higher in p21(-/-) human fibroblasts than in parental p21(+/+) cells, and in primary fibroblasts after p21 knock-down by RNA interference. Concomitantly, recruitment of PARP-1 and PCNA to damaged DNA was greater in p21(-/-) than in p21(+/+) fibroblasts. This accumulation resulted in persistent interaction of PARP-1 with BER factors, such as XRCC1 and DNA polymerase beta, suggesting that prolonged association reduced the DNA repair efficiency. These results indicate that p21 regulates the interaction between PARP-1 and BER factors, to promote efficient DNA repair.
Insights
The cell cycle inhibitor p21 regulates base excision repair (BER) by interacting with PARP-1. Its absence increases sensitivity to DNA damage and impairs repair efficiency by prolonging BER factor interactions.
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Cell Cycle Regulation
Background:
- The cell cycle inhibitor p21(CDKN1A) is known to interact with PCNA in nucleotide excision repair.
- The role of p21 in base excision repair (BER) remains largely unexplored.
Purpose of the Study:
- To investigate the role of p21 in base excision repair (BER).
- To analyze p21 interactions with BER factors and assess the DNA damage response in p21-deficient cells.
Main Methods:
- Analysis of p21 interactions with BER factors.
- Assessment of p21(-/-) human fibroblasts' response to alkylating agents.
- Evaluation of clonogenic efficiency, DNA repair via comet assay, and histone H2AX phosphorylation.
- Investigation of p21 binding to PARP-1 domains and poly(ADP-ribosylation) levels.
- Measurement of PARP-1 and PCNA recruitment to damaged DNA.
Main Results:
- p21(-/-) fibroblasts showed increased sensitivity to alkylation-induced DNA damage.
- Defective DNA repair and persistent histone H2AX phosphorylation were observed in p21-deficient cells.
- p21 binds to PARP-1, regulating its activity; absence of p21 led to higher poly(ADP-ribosylation).
- Increased recruitment of PARP-1 and PCNA to damaged DNA in p21(-/-) cells resulted in prolonged interactions with BER factors, reducing repair efficiency.
Conclusions:
- p21 plays a crucial role in promoting efficient DNA repair through the BER pathway.
- p21 regulates the interaction dynamics between PARP-1 and other BER factors.
- The findings highlight p21 as a key regulator in maintaining genomic stability by ensuring efficient DNA repair.
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