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An Acidic Loop and Cognate Phosphorylation Sites Define a Molecular Switch That Modulates Ubiquitin Charging Activity in Cdc34-Like Enzymes

机译:酸性环和同源磷酸化位点定义了一种分子开关该分子开关可调节类似于Cdc34的酶中的泛素充电活性。

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摘要

E2 ubiquitin-conjugating enzymes are crucial mediators of protein ubiquitination, which strongly influence the ultimate fate of the target substrates. Recently, it has been shown that the activity of several enzymes of the ubiquitination pathway is finely tuned by phosphorylation, an ubiquitous mechanism for cellular regulation, which modulates protein conformation. In this contribution, we provide the first rationale, at the molecular level, of the regulatory mechanism mediated by casein kinase 2 (CK2) phosphorylation of E2 Cdc34-like enzymes. In particular, we identify two co-evolving signature elements in one of the larger families of E2 enzymes: an acidic insertion in β4α2 loop in the proximity of the catalytic cysteine and two conserved key serine residues within the catalytic domain, which are phosphorylated by CK2. Our investigations, using yeast Cdc34 as a model, through 2.5 µs molecular dynamics simulations and biochemical assays, define these two elements as an important phosphorylation-controlled switch that modulates opening and closing of the catalytic cleft. The mechanism relies on electrostatic repulsions between a conserved serine phosphorylated by CK2 and the acidic residues of the β4α2 loop, promoting E2 ubiquitin charging activity. Our investigation identifies a new and unexpected pivotal role for the acidic loop, providing the first evidence that this loop is crucial not only for downstream events related to ubiquitin chain assembly, but is also mandatory for the modulation of an upstream crucial step of the ubiquitin pathway: the ubiquitin charging in the E2 catalytic cleft.
机译:E2泛素结合酶是蛋白质泛素化的关键介质,它会强烈影响靶标底物的最终命运。最近,已经表明,泛素化途径的几种酶的活性可以通过磷酸化来微调,磷酸化是调节蛋白质构象的细胞调节的普遍机制。在这项贡献中,我们在分子水平上提供了由E2 Cdc34样酶的酪蛋白激酶2(CK2)磷酸化介导的调控机制的第一个原理。特别是,我们在一个较大的E2酶家族中鉴定出两个共同进化的特征元件:在催化半胱氨酸附近的β4α2环中的酸性插入和在催化域中两个保守的丝氨酸残基,这些残基被CK2磷酸化。我们的研究以酵母Cdc34为模型,通过2.5 µs分子动力学模拟和生化分析,将这两个元素定义为重要的磷酸化控制开关,可调节催化裂隙的打开和关闭。该机制依赖于被CK2磷酸化的保守丝氨酸与β4α2环的酸性残基之间的静电排斥,从而促进E2泛素的充电活性。我们的研究确定了酸性环的新的和出乎意料的关键作用,这提供了第一个证据,表明该环不仅对于与遍在蛋白链装配有关的下游事件至关重要,而且对于调节遍在蛋白途径的上游关键步骤也是必不可少的:E2催化裂隙中的泛素带电。

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