GSK-3484862 targets DNMT1 for degradation in cells

Author:

Chen Qin1,Liu Bigang1,Zeng Yang12,Hwang Jee Won1,Dai Nan3,Corrêa Ivan R3,Estecio Marcos R1,Zhang Xing1,Santos Margarida A12,Chen Taiping12,Cheng Xiaodong12ORCID

Affiliation:

1. Department of Epigenetics and Molecular Carcinogenesis, University of Texas MD Anderson Cancer Center , Houston , TX 77030 , USA

2. Program in Genetics and Epigenetics, The University of Texas MD Anderson Cancer Center UTHealth Graduate School of Biomedical Sciences , Houston , TX 77030 , USA

3. New England Biolabs, Inc , Ipswich , MA 01938,  USA

Abstract

Abstract Maintenance of genomic methylation patterns at DNA replication forks by DNMT1 is the key to faithful mitotic inheritance. DNMT1 is often overexpressed in cancer cells and the DNA hypomethylating agents azacytidine and decitabine are currently used in the treatment of hematologic malignancies. However, the toxicity of these cytidine analogs and their ineffectiveness in treating solid tumors have limited wider clinical use. GSK-3484862 is a newly-developed, dicyanopyridine containing, non-nucleoside DNMT1-selective inhibitor with low cellular toxicity. Here, we show that GSK-3484862 targets DNMT1 for protein degradation in both cancer cell lines and murine embryonic stem cells (mESCs). DNMT1 depletion was rapid, taking effect within hours following GSK-3484862 treatment, leading to global hypomethylation. Inhibitor-induced DNMT1 degradation was proteasome-dependent, with no discernible loss of DNMT1 mRNA. In mESCs, GSK-3484862-induced Dnmt1 degradation requires the Dnmt1 accessory factor Uhrf1 and its E3 ubiquitin ligase activity. We also show that Dnmt1 depletion and DNA hypomethylation induced by the compound are reversible after its removal. Together, these results indicate that this DNMT1-selective degrader/inhibitor will be a valuable tool for dissecting coordinated events linking DNA methylation to gene expression and identifying downstream effectors that ultimately regulate cellular response to altered DNA methylation patterns in a tissue/cell-specific manner.

Funder

National Institutes of Health

Cancer Prevention and Research Institute of Texas

Publisher

Oxford University Press (OUP)

Subject

Cancer Research,Oncology

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