Screening of organoids derived from patients with breast cancer implicates the repressor NCOR2 in cytotoxic stress response and antitumor immunity

生物 组蛋白脱乙酰基酶 癌症研究 表观遗传学 表观遗传疗法 癌症 免疫学 组蛋白 DNA甲基化 遗传学 基因表达 基因
作者
Kelvin K. Tsai,Shu-Ching Huang,Jason J. Northey,Wen‐Ying Liao,Chung‐Chi Hsu,Li‐Hsin Cheng,Michael Werner,Chih‐Pin Chuu,Chandrima Chatterjee,Jonathon N. Lakins,Valerie M. Weaver
出处
期刊:Nature cancer [Springer Nature]
卷期号:3 (6): 734-752 被引量:14
标识
DOI:10.1038/s43018-022-00375-0
摘要

Resistance to antitumor treatment contributes to patient mortality. Functional proteomic screening of organoids derived from chemotherapy-treated patients with breast cancer identified nuclear receptor corepressor 2 (NCOR2) histone deacetylase as an inhibitor of cytotoxic stress response and antitumor immunity. High NCOR2 in the tumors of patients with breast cancer predicted chemotherapy refractoriness, tumor recurrence and poor prognosis. Molecular studies revealed that NCOR2 inhibits antitumor treatment by regulating histone deacetylase 3 (HDAC3) to repress interferon regulatory factor 1 (IRF-1)-dependent gene expression and interferon (IFN) signaling. Reducing NCOR2 or impeding its epigenetic activity by modifying its interaction with HDAC3 enhanced chemotherapy responsiveness and restored antitumor immunity. An adeno-associated viral NCOR2–HDAC3 competitor potentiated chemotherapy and immune checkpoint therapy in culture and in vivo by permitting transcription of IRF-1-regulated proapoptosis and inflammatory genes to increase IFN-γ signaling. The findings illustrate the utility of patient-derived organoids for drug discovery and suggest that targeting stress and inflammatory–repressor complexes such as NCOR2–HDAC3 could overcome treatment resistance and improve the outcome of patients with cancer. Weaver and colleagues use breast cancer patient-derived organoids and mouse models to find an inhibitory role for the nuclear repressor NCOR2 in chemotherapy response and antitumor immunity, which can be targeted by blocking NCOR2–HDAC3 interaction.
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