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Targeting MAD2L2-dependent translesion synthesis impairs DNA damage tolerance and enhances cellular response to
Philippa Jennifer Ayiku1, Nomi Barda1, Orly Eva Weiss1
1School of Biomedical Sciences, Faculty of Medicine, Ariel University, Ariel, Israel.
Abstract:
Translesion synthesis (TLS) is a DNA damage tolerance pathway that enables cells to replicate across damaged DNA, thereby promoting cell survival under genotoxic stress, however, contributing to genomic instability and therapy resistance. C#3 is a small molecule that disrupts the interaction between MAD2L2 and Rev1, a key complex required for DNA polymerase ζ-mediated TLS. Here, we further investigated the impact of C#3 on MAD2L2-dependent TLS activity and cellular responses to DNA damage. Consistent with our previous findings, C#3 enhanced cellular sensitivity to cisplatin in multiple cancer cell lines and increased DNA damage signaling following treatment. Using a non-replicating plasmid assay, we demonstrate that C#3 impairs lesion bypass across DNA adducts in mammalian cells. Disruption of the MAD2L2-Rev1 axis was further supported by reduced formation of MAD2L2-Rev1 complexes, as assessed by proximity ligation assay. Functionally, cells exposed to C#3 during recovery from cisplatin treatment exhibited persistent γH2AX signaling, consistent with delayed resolution of replication-associated DNA damage. In-vivo, combined treatment with C#3 and cisplatin reduced tumor growth in syngeneic melanoma and triple-negative breast cancer mouse models compared with either treatment alone. Together, these findings demonstrate that pharmacological disruption of the MAD2L2-Rev1 axis impairs TLS associated DNA damage tolerance, enhances cellular responses to cisplatin-induced DNA damage, and suppresses tumor growth in-vivo. These results support targeting MAD2L2-dependent TLS as a potential strategy for improving the efficacy of DNA damaging chemotherapy.
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