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解析与家族性阿尔茨海默病中 ε 效率相关的 APP 跨膜结构域构象变化。

Dissecting conformational changes in APP's transmembrane domain linked to ε-efficiency in familial Alzheimer's disease.

机构信息

Technical University of Munich, Chair of Physics of Synthetic Biological Systems, Freising, Germany.

出版信息

PLoS One. 2018 Jul 2;13(7):e0200077. doi: 10.1371/journal.pone.0200077. eCollection 2018.

Abstract

The mechanism by which familial Alzheimer's disease (FAD) mutations within the transmembrane domain (TMD) of the Amyloid Precursor Protein (APP) affect ε-endoproteolysis is only poorly understood. Thereby, mutations in the cleavage domain reduce ε-efficiency of γ-secretase cleavage and some even shift entry into production lines. Since cleavage occurs within the TMD, a relationship between processing and TMD structure and dynamics seems obvious. Using molecular dynamic simulations, we dissect the dynamic features of wild-type and seven FAD-mutants into local and global components. Mutations consistently enhance hydrogen-bond fluctuations upstream of the ε-cleavage sites but maintain strong helicity there. Dynamic perturbation-response scanning reveals that FAD-mutants target backbone motions utilized in the bound state. Those motions, obscured by large-scale motions in the pre-bound state, provide (i) a dynamic mechanism underlying the proposed coupling between binding and ε-cleavage, (ii) key sites consistent with experimentally determined docking sites, and (iii) the distinction between mutants and wild-type.

摘要

家族性阿尔茨海默病(FAD)突变在淀粉样前体蛋白(APP)跨膜结构域(TMD)中影响ε-内切酶水解的机制尚未完全阐明。因此,切割域中的突变会降低 γ-分泌酶切割的ε-效率,有些甚至会改变进入生产线的途径。由于切割发生在 TMD 内,因此加工与 TMD 结构和动力学之间的关系似乎是显而易见的。使用分子动力学模拟,我们将野生型和七种 FAD 突变体的动态特征分解为局部和全局成分。突变一致增强了ε切割位点上游的氢键波动,但在那里保持了很强的螺旋度。动态扰动响应扫描揭示了 FAD 突变靶向在结合状态下使用的骨架运动。这些运动被预结合状态下的大规模运动所掩盖,为(i)结合和ε切割之间提出的偶联提供了一个动态机制,(ii)与实验确定的对接位点一致的关键位点,以及(iii)突变体与野生型之间的区别。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f56/6028146/d13d09319c12/pone.0200077.g001.jpg

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