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UNG2 deacetylation confers cancer cell resistance to hydrogen peroxide-induced cytotoxicity
Yantao Bao1, Lili Tong2, Boyan Song3
1Guangdong Key Laboratory of Genome Instability and Human Disease Prevention, Department of Biochemistry and Molecular Biology, Shenzhen University School of Medicine, Shenzhen, 518055, China; International Cancer Center, Shenzhen University School of Medicine, Shenzhen, 518055, China.
Abstract:
Cancer therapeutics produce reactive oxygen species (ROS) that damage the cancer genome and lead to cell death. However, cancer cells can resist ROS-induced cytotoxicity and survive. We show that nuclear-localized uracil-DNA N-glycosylase isoform 2 (UNG2) has a critical role in preventing ROS-induced DNA damage and enabling cancer-cell resistance. Under physiological conditions, UNG2 is targeted for rapid degradation via an interaction with the E3 ligase UHRF1. In response to ROS, however, UNG2 protein in cancer cells exhibits a remarkably extended half-life. Upon ROS exposure, UNG2 is deacetylated at lysine 78 by histone deacetylases, which prevents the UNG2-UHRF1 interaction. Accumulated UNG2 protein can thus excise the base damaged by ROS and enable the cell to survive these otherwise toxic conditions. Consequently, combining HDAC inhibitors (to permit UNG2 degradation) with genotoxic agents (to produce cytotoxic cellular levels of ROS) leads to a robust synergistic killing effect in cancer cells in vitro. Altogether, these data support the application of a novel approach to cancer treatment based on promoting UNG2 degradation by altering its acetylation status using an HDAC inhibitor.
Insights
Cancer cells resist DNA damage from therapeutics using uracil-DNA N-glycosylase isoform 2 (UNG2). Inhibiting histone deacetylases (HDACs) with UNG2 promotes cancer cell death, offering a new therapeutic strategy.
Area of Science:
- Molecular Biology
- Cancer Research
- Biochemistry
Background:
- Cancer therapeutics generate reactive oxygen species (ROS) that damage cancer cell DNA, aiming to induce cell death.
- Cancer cells possess resistance mechanisms against ROS-induced cytotoxicity, contributing to treatment failure.
Purpose of the Study:
- To investigate the role of nuclear-localized uracil-DNA N-glycosylase isoform 2 (UNG2) in cancer cell resistance to ROS-induced DNA damage.
- To explore a novel therapeutic strategy combining HDAC inhibitors and genotoxic agents for enhanced cancer cell killing.
Main Methods:
- Investigated the stability and function of UNG2 in cancer cells under ROS exposure.
- Examined the interaction between UNG2 and the E3 ligase UHRF1, and the role of acetylation and histone deacetylases (HDACs).
- Evaluated the synergistic effect of combining HDAC inhibitors with genotoxic agents on cancer cell viability in vitro.
Main Results:
- UNG2 prevents ROS-induced DNA damage and confers resistance to cancer cells.
- ROS exposure extends UNG2 half-life by preventing its degradation via the UHRF1 ligase, mediated by deacetylation at lysine 78.
- Combining HDAC inhibitors with genotoxic agents resulted in a significant synergistic killing effect on cancer cells.
Conclusions:
- Nuclear UNG2 plays a critical role in enabling cancer cell survival under ROS-inducing conditions.
- Targeting UNG2 degradation through HDAC inhibition presents a promising novel approach for cancer therapy.
- This strategy enhances the efficacy of genotoxic cancer therapeutics by overcoming cancer cell resistance mechanisms.
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