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Cullin-RING 连接酶谱的可塑性影响配体诱导蛋白降解的敏感性。

Plasticity of the Cullin-RING Ligase Repertoire Shapes Sensitivity to Ligand-Induced Protein Degradation.

机构信息

CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, Lazarettgasse 14, AKH BT 25.3, 1090 Vienna, Austria.

CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, Lazarettgasse 14, AKH BT 25.3, 1090 Vienna, Austria.

出版信息

Mol Cell. 2019 Aug 22;75(4):849-858.e8. doi: 10.1016/j.molcel.2019.07.013.

Abstract

Inducing protein degradation via small molecules is a transformative therapeutic paradigm. Although structural requirements of target degradation are emerging, mechanisms determining the cellular response to small-molecule degraders remain poorly understood. To systematically delineate effectors required for targeted protein degradation, we applied genome-scale CRISPR/Cas9 screens for five drugs that hijack different substrate receptors (SRs) of cullin RING ligases (CRLs) to induce target proteolysis. We found that sensitivity to small-molecule degraders is dictated by shared and drug-specific modulator networks, including the COP9 signalosome and the SR exchange factor CAND1. Genetic or pharmacologic perturbation of these effectors impairs CRL plasticity and arrests a wide array of ligases in a constitutively active state. Resulting defects in CRL decommissioning prompt widespread CRL auto-degradation that confers resistance to multiple degraders. Collectively, our study informs on regulation and architecture of CRLs amenable for targeted protein degradation and outlines biomarkers and putative resistance mechanisms for upcoming clinical investigation.

摘要

通过小分子诱导蛋白质降解是一种变革性的治疗范例。尽管目标降解的结构要求正在出现,但决定细胞对小分子降解剂反应的机制仍知之甚少。为了系统地表征靶向蛋白质降解所需的效应物,我们应用了针对五种药物的全基因组 CRISPR/Cas9 筛选,这些药物劫持了不同的泛素连接酶(CRLs)的底物受体(SRs)来诱导靶蛋白水解。我们发现,对小分子降解剂的敏感性取决于共享和药物特异性的调节剂网络,包括 COP9 信号体和 SR 交换因子 CAND1。这些效应物的遗传或药理学干扰会破坏 CRL 的可塑性,并使广泛的 ligases 处于持续激活状态。CRL 退役的缺陷会导致广泛的 CRL 自动降解,从而对多种降解剂产生抗性。总的来说,我们的研究为靶向蛋白质降解的 CRL 调节和结构提供了信息,并概述了即将进行临床研究的生物标志物和潜在的耐药机制。

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