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The proteasome-interacting Ecm29 protein disassembles the 26S proteasome in response to oxidative stress

机译:蛋白酶体相互作用的Ecm29蛋白响应氧化应激而使26S蛋白酶体分解

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摘要

Oxidative stress has been implicated in multiple human neurological and other disorders. Proteasomes are multi-subunit proteases critical for the removal of oxidatively damaged proteins. To understand stress-associated human pathologies, it is important to uncover the molecular events underlying the regulation of proteasomes upon oxidative stress. To this end, we investigated H2O2 stress–induced molecular changes of the human 26S proteasome and determined that stress-induced 26S proteasome disassembly is conserved from yeast to human. Moreover, we developed and employed a new proteomic approach, XAP (in vivo cross-linking–assisted affinity purification), coupled with stable isotope labeling with amino acids in cell culture (SILAC)–based quantitative MS, to capture and quantify several weakly bound proteasome-interacting proteins and examine their roles in stress-mediated proteasomal remodeling. Our results indicate that the adapter protein Ecm29 is the main proteasome-interacting protein responsible for stress-triggered remodeling of the 26S proteasome in human cells. Importantly, using a disuccinimidyl sulfoxide–based cross-linking MS platform, we mapped the interactions of Ecm29 within itself and with proteasome subunits and determined the architecture of the Ecm29–proteasome complex with integrative structure modeling. These results enabled us to propose a structural model in which Ecm29 intrudes on the interaction between the 20S core particle and the 19S regulatory particle in the 26S proteasome, disrupting the proteasome structure in response to oxidative stress.
机译:氧化应激与多种人类神经系统疾病和其他疾病有关。蛋白酶体是多亚基蛋白酶,对于去除氧化损伤的蛋白质至关重要。要了解与压力相关的人类病理,重要的是揭示氧化应激后蛋白酶体调控的分子事件。为此,我们调查了H2O2胁迫诱导的人类26S蛋白酶体的分子变化,并确定了应力诱导的26S蛋白酶体的分解从酵母到人都是保守的。此外,我们开发并采用了新的蛋白质组学方法XAP(体内交联辅助亲和纯化),并在基于细胞培养(SILAC)的定量MS中结合了氨基酸的稳定同位素标记,以捕获和定量一些弱结合蛋白酶体相互作用蛋白,并研究其在应激介导的蛋白酶体重塑中的作用。我们的结果表明,衔接蛋白Ecm29是主要的蛋白酶体相互作用蛋白,负责人细胞中26S蛋白酶体的应力触发重塑。重要的是,我们使用基于二琥珀酰亚胺基亚砜的交联MS平台,绘制了Ecm29在其内部以及与蛋白酶体亚基的相互作用,并通过整合结构建模确定了Ecm29-蛋白酶体复合物的体系结构。这些结果使我们能够提出一个结构模型,其中Ecm29侵入26S蛋白酶体中20S核心颗粒与19S调节颗粒之间的相互作用,从而响应氧化应激而破坏蛋白酶体的结构。

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