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Published on: February 9, 2024
ATR-Chk2 signaling in p53 activation and DNA damage response during cisplatin-induced apoptosis
Navjotsingh Pabla1, Shuang Huang, Qing-Sheng Mi
1Department of Cellular Biology and Anatomy, Center for Biotechnology and Genomic Medicine, Medical College of Georgia and Charlie Norwood Veterans Affairs Medical Center, 1459 Laney Walker Boulevard, Augusta, GA 30912, USA.
Abstract:
Cisplatin is one of the most effective anti-cancer drugs; however, the use of cisplatin is limited by its toxicity in normal tissues, particularly injury of the kidneys. The mechanisms underlying the therapeutic effects of cisplatin in cancers and side effects in normal tissues are largely unclear. Recent work has suggested a role for p53 in cisplatin-induced renal cell apoptosis and kidney injury; however, the signaling pathway leading to p53 activation and renal apoptosis is unknown. Here we demonstrate an early DNA damage response during cisplatin treatment of renal cells and tissues. Importantly, in the DNA damage response, we demonstrate a critical role for ATR, but not ATM (ataxia telangiectasia mutated) or DNA-PK (DNA-dependent protein kinase), in cisplatin-induced p53 activation and apoptosis. We show that ATR is specifically activated during cisplatin treatment and co-localizes with H2AX, forming nuclear foci at the site of DNA damage. Blockade of ATR with a dominant-negative mutant inhibits cisplatin-induced p53 activation and renal cell apoptosis. Consistently, cisplatin-induced p53 activation and apoptosis are suppressed in ATR-deficient fibroblasts. Downstream of ATR, both Chk1 and Chk2 are phosphorylated during cisplatin treatment in an ATR-dependent manner. Interestingly, following phosphorylation, Chk1 is degraded via the proteosomal pathway, whereas Chk2 is activated. Inhibition of Chk2 by a dominant-negative mutant or gene deficiency attenuates cisplatin-induced p53 activation and apoptosis. In vivo in C57BL/6 mice, ATR and Chk2 are activated in renal tissues following cisplatin treatment. Together, the results suggest an important role for the DNA damage response mediated by ATR-Chk2 in p53 activation and renal cell apoptosis during cisplatin nephrotoxicity.
Insights
The DNA damage response protein ATR and Chk2 are crucial for cisplatin-induced kidney cell death. This pathway explains cisplatin
Area of Science:
- Cell Biology
- Molecular Biology
- Toxicology
Background:
- Cisplatin is an effective anti-cancer drug but causes kidney toxicity.
- The mechanisms of cisplatin's efficacy and toxicity are not fully understood.
- p53 is implicated in cisplatin-induced kidney injury, but the activation pathway is unknown.
Purpose of the Study:
- To elucidate the signaling pathway of p53 activation in cisplatin-induced renal apoptosis.
- To investigate the role of DNA damage response proteins in cisplatin nephrotoxicity.
Main Methods:
- Utilized renal cells and tissues, ATR-deficient fibroblasts, and C57BL/6 mice.
- Examined DNA damage response proteins including ATR, ATM, DNA-PK, H2AX, Chk1, and Chk2.
- Employed dominant-negative mutants and gene deficiency to block protein function.
Main Results:
- ATR, not ATM or DNA-PK, is critical for cisplatin-induced p53 activation and apoptosis.
- ATR activation and foci formation with H2AX indicate its role in DNA damage.
- ATR blockade or deficiency inhibits cisplatin-induced p53 activation and apoptosis.
- ATR-dependent phosphorylation of Chk1 and Chk2 was observed, with Chk1 degradation and Chk2 activation.
- Inhibition of Chk2 also attenuated cisplatin-induced p53 activation and apoptosis.
- ATR and Chk2 were activated in mouse renal tissues after cisplatin treatment.
Conclusions:
- The DNA damage response pathway involving ATR and Chk2 is essential for p53 activation and renal cell apoptosis during cisplatin nephrotoxicity.
- ATR acts upstream of Chk2 in this pathway.
- These findings provide mechanistic insights into cisplatin-induced kidney injury.
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