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Rapid E2-E3 Assembly and Disassembly Enable Processive Ubiquitylation of Cullin-RING Ubiquitin Ligase Substrates

机译:快速的E2-E3组装和拆卸可实现Cullin-ring泛素连接酶底物的过程性泛素化

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摘要

Degradation by the ubiquitin-proteasome system requires assembly of a polyubiquitin chain upon substrate. However, the structural and mechanistic features that enable template-independent processive chain synthesis are unknown. We show that chain assembly by ubiquitin ligase SCF and ubiquitin-conjugating enzyme Cdc34 is facilitated by the unusual nature of Cdc34-SCF transactions: Cdc34 binds SCF with nanomolar affinity, nevertheless the complex is extremely dynamic. These properties are enabled by rapid association driven by electrostatic interactions between the acidic tail of Cdc34 and a basic 'canyon' in the Cul1 subunit of SCF. Ab initio docking between Cdc34 and Cul1 predicts intimate contact between the tail and the basic canyon, an arrangement confirmed by crosslinking and kinetic analysis of mutants. Basic canyon residues are conserved in both Cul1 paralogs and orthologs, suggesting that the same mechanism underlies processivity for all cullin-RING ubiquitin ligases. We discuss different strategies by which processive ubiquitin chain synthesis may be achieved.
机译:通过泛素-蛋白酶体系统降解需要在底物上组装多泛素链。然而,使模板独立的过程链合成成为可能的结构和机制特征尚不清楚。我们显示Cdc34-SCF交易的非同寻常的性质促进了遍在蛋白连接酶SCF和遍在蛋白缀合酶Cdc34的链组装:Cdc34以纳摩尔亲和力与SCF结合,但是这种复合物是极其动态的。 Cdc34的酸性尾巴与SCF的Cul1亚基中的基本“峡谷”之间的静电相互作用驱动快速缔合,从而实现了这些特性。从头开始对接在Cdc34和Cul1之间,可以预测尾巴和基本峡谷之间的紧密接触,这种排列已通过突变体的交联和动力学分析得到了证实。基本的峡谷残基在Cul1旁系同源物和直系同源物中均保守,这表明相同的机制是所有cullin-ring泛素连接酶持续合成的基础。我们讨论了可实现进行性遍在蛋白链合成的不同策略。

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