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Characterizing the structural ensemble of γ-secretase using a multiscale molecular dynamics approach

机译:使用多尺度分子动力学方法表征γ-分泌酶的结构整体

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摘要

γ-Secretase is an intramembrane-cleaving aspartyl protease that plays an essential role in the processing of a variety of integral membrane proteins. Its role in the ultimate cleavage step in the processing of amyloid precursor protein to form amyloid-β (Aβ) peptide makes it an important therapeutic target in Alzheimer's disease research. Significant recent advances have been made in structural studies of this critical membrane protein complex. However, details of the mechanism of activation of the enzyme complex remain unclear. Using a multiscale computational modeling approach, combining multiple coarse-grained microsecond dynamic trajectories with all-atom models, the structure and two conformational states of the γ-secretase complex were evaluated. The transition between enzymatic state 1 and state 2 is shown to critically depend on the protonation states of the key catalytic residues Asp257 and Asp385 in the active site domain. The active site formation, related to our γ-secretase state 2, is observed to involve a concerted movement of four transmembrane helices from the catalytic subunit, resulting in the required localization of the catalytic residues. Global analysis of the structural ensemble of the enzyme complex was used to identify collective fluctuations important to the mechanism of substrate recognition and demonstrate that the corresponding fluctuations observed were uncorrelated with structural changes associated with enzyme activation. Overall, this computational study provides essential insight into the role of structure and dynamics in the activation and function of γ-secretase.
机译:γ-分泌酶是一种膜内裂解的天冬氨酰蛋白酶,在多种整合膜蛋白的加工中起着至关重要的作用。它在淀粉样前体蛋白加工形成淀粉样β(Aβ)肽的最终裂解步骤中的作用使其成为阿尔茨海默氏病研究的重要治疗靶标。在这种关键的膜蛋白复合物的结构研究中,最近取得了重大进展。但是,酶复合物激活机理的细节仍不清楚。使用多尺度计算建模方法,将多个粗粒度的微秒动态轨迹与全原子模型相结合,评估了γ-分泌酶复合物的结构和两个构象状态。酶状态1和状态2之间的过渡显示出关键地取决于活性位点域中关键催化残基Asp257和Asp385的质子化状态。观察到与我们的γ分泌酶状态2相关的活性位点形成涉及来自催化亚基的四个跨膜螺旋的协同运动,导致所需的催化残基定位。酶复合物的结构整体的全局分析被用来识别对底物识别机制重要的集体波动,并证明观察到的相应波动与与酶活化相关的结构变化无关。总体而言,这项计算研究提供了有关结构和动力学在γ分泌酶激活和功能中的作用的基本见识。

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