细胞周期蛋白依赖激酶6
细胞周期蛋白
视网膜母细胞瘤蛋白
生物
帕博西利布
癌症研究
泛素连接酶
调节器
细胞生物学
细胞周期
遗传学
泛素
癌症
基因
转移性乳腺癌
乳腺癌
作者
Daniele Simoneschi,Gergely Róna,Nan Zhou,Yeon‐Tae Jeong,Shaowen Jiang,Giacomo Milletti,Arnaldo Arbini,Alfie O’sullivan,Andrew Wang,Sorasicha Nithikasem,Sarah Keegan,Yik Siu,Valentina Cianfanelli,Emiliano Maiani,Francesca Nazio,Francesco Cecconi,Francesco Boccalatte,David Fenyö,Drew R. Jones,Luca Busino,Michele Pagano
出处
期刊:Nature
[Springer Nature]
日期:2021-04-14
卷期号:592 (7856): 789-793
被引量:97
标识
DOI:10.1038/s41586-021-03445-y
摘要
D-type cyclins are central regulators of the cell division cycle and are among the most frequently deregulated therapeutic targets in human cancer1, but the mechanisms that regulate their turnover are still being debated2,3. Here, by combining biochemical and genetics studies in somatic cells, we identify CRL4AMBRA1 (also known as CRL4DCAF3) as the ubiquitin ligase that targets all three D-type cyclins for degradation. During development, loss of Ambra1 induces the accumulation of D-type cyclins and retinoblastoma (RB) hyperphosphorylation and hyperproliferation, and results in defects of the nervous system that are reduced by treating pregnant mice with the FDA-approved CDK4 and CDK6 (CDK4/6) inhibitor abemaciclib. Moreover, AMBRA1 acts as a tumour suppressor in mouse models and low AMBRA1 mRNA levels are predictive of poor survival in cancer patients. Cancer hotspot mutations in D-type cyclins abrogate their binding to AMBRA1 and induce their stabilization. Finally, a whole-genome, CRISPR–Cas9 screen identified AMBRA1 as a regulator of the response to CDK4/6 inhibition. Loss of AMBRA1 reduces sensitivity to CDK4/6 inhibitors by promoting the formation of complexes of D-type cyclins with CDK2. Collectively, our results reveal the molecular mechanism that controls the stability of D-type cyclins during cell-cycle progression, in development and in human cancer, and implicate AMBRA1 as a critical regulator of the RB pathway. Biochemical and genetics studies identify CRL4AMBRA1 as the ubiquitin ligase that has a key role in regulating the stability of D-type cyclins during cell-cycle progression.
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