前列腺癌
癌症研究
表观遗传学
癌症干细胞
生物
基因敲除
细胞生物学
前列腺
干细胞
线粒体
癌症
遗传学
细胞凋亡
基因
作者
Gianluca Civenni,Roberto Bosotti,Andrea Timpanaro,Ramiro Vázquez,Jessica Merulla,Shusil K. Pandit,Simona Rossi,Domenico Albino,Sara Allegrini,Abhishek Mitra,Sarah N. Mapelli,Luca Vierling,Mariausilia Giurdanella,Martina Marchetti‐Deschmann,Alyssa Paganoni,Andrea Rinaldi,Marco Losa,Enrica Mira-Catò,Rocco D’Antuono,Diego Morone
出处
期刊:Cell Metabolism
[Cell Press]
日期:2019-05-23
卷期号:30 (2): 303-318.e6
被引量:93
标识
DOI:10.1016/j.cmet.2019.05.004
摘要
Cancer stem cells (CSCs) contribute to disease progression and treatment failure in human cancers. The balance among self-renewal, differentiation, and senescence determines the expansion or progressive exhaustion of CSCs. Targeting these processes might lead to novel anticancer therapies. Here, we uncover a novel link between BRD4, mitochondrial dynamics, and self-renewal of prostate CSCs. Targeting BRD4 by genetic knockdown or chemical inhibitors blocked mitochondrial fission and caused CSC exhaustion and loss of tumorigenic capability. Depletion of CSCs occurred in multiple prostate cancer models, indicating a common vulnerability and dependency on mitochondrial dynamics. These effects depended on rewiring of the BRD4-driven transcription and repression of mitochondrial fission factor (Mff). Knockdown of Mff reproduced the effects of BRD4 inhibition, whereas ectopic Mff expression rescued prostate CSCs from exhaustion. This novel concept of targeting mitochondrial plasticity in CSCs through BRD4 inhibition provides a new paradigm for developing more effective treatment strategies for prostate cancer.
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