Histone methyltransferase KMT5C drives liver cancer progression and directs therapeutic response to PARP inhibitors

Author:

Tong Yu1,Wang Fan1,Li Songling2,Guo Wenyun1,Li Qianyu1,Qian Yifei1,Li Linfeng1,Zhao Huifang1,Zhang Yonglong3,Gao Wei-Qiang12ORCID,Liu Yanfeng14ORCID

Affiliation:

1. State Key Laboratory of Systems Medicine for Cancer, Department of Liver Surgery, Renji-Med-X Clinical Stem Cell Research Center, Ren Ji Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai, China

2. School of Biomedical Engineering & Med-X Research Institute, Shanghai Jiao Tong University, Shanghai, China

3. Central Laboratory, Shanghai Jiaotong University Affiliated Sixth People’s Hospital, Shanghai, China

4. Shanghai Engineering Research Center of Transplantation and Immunology, Shanghai Institute of Transplantation, Shanghai, China

Abstract

Background and Aims: Epigenetic plasticity is a major challenge in cancer-targeted therapy. However, the molecular basis governing this process has not yet been clearly defined. Despite the considerable success of poly(ADP-ribose) polymerase inhibitors (PARPi) in cancer therapy, the limited response to PARPi, especially in HCC, has been a bottleneck in its clinical implications. Herein, we investigated the molecular basis of the histone methyltransferase KMT5C (lysine methyltransferase 5C) that governs PARPi sensitivity and explored a potential therapeutic strategy for enhancing PARPi efficacy. Approach and Results: We identified KMT5C, a trimethyltransferase of H4K20, as a targetable epigenetic factor that promoted liver tumor growth in mouse de novo MYC/Trp53 −/− and xenograft liver tumor models. Notably, induction of KMT5C by environmental stress was crucial for DNA repair and HCC cell survival. Mechanistically, KMT5C interacted with the pivotal component of homologous recombination repair, RAD51, and promoted RAD51/RAD54 complex formation, which was essential for the activation of dsDNA breaks repair. This effect depended on the methyltransferase activity of KMT5C. We further demonstrated that the function of KMT5C in promoting HCC progression was dependent on RAD51. Importantly, either a pharmacological inhibitor (A196) or genetic inhibition of KMT5C sensitized liver cancer cells to PARPi. Conclusions: KMT5C played a vital role in promoting liver cancer progression by activating the DNA repair response. Our results revealed a novel therapeutic approach using the KMT5C inhibitor A196, concurrent with olaparib, as a potential HCC therapy.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Hepatology

Reference35 articles.

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