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阿尔茨海默病保护性A2T突变对Aβ₁₋₄₂单体构象态势的改变与A2V突变不同。

Alzheimer's protective A2T mutation changes the conformational landscape of the Aβ₁₋₄₂ monomer differently than does the A2V mutation.

作者信息

Das Payel, Murray Brian, Belfort Georges

机构信息

Soft Matter Theory and Simulations Group, Computational Biology Center, IBM Thomas J. Watson Research Center, Yorktown Heights, New York.

Howard P. Isermann Department of Chemical and Biological Engineering and Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, New York.

出版信息

Biophys J. 2015 Feb 3;108(3):738-47. doi: 10.1016/j.bpj.2014.12.013.

Abstract

The aggregation of amyloid-β (Aβ) peptides plays a crucial role in the etiology of Alzheimer's disease (AD). Recently, it has been reported that an A2T mutation in Aβ can protect against AD. Interestingly, a nonpolar A2V mutation also has been found to offer protection against AD in the heterozygous state, although it causes early-onset AD in homozygous carriers. Since the conformational landscape of the Aβ monomer is known to directly contribute to the early-stage aggregation mechanism, it is important to characterize the effects of the A2T and A2V mutations on Aβ₁₋₄₂ monomer structure. Here, we have performed extensive atomistic replica-exchange molecular dynamics simulations of the solvated wild-type (WT), A2V, and A2T Aβ₁₋₄₂ monomers. Our simulations reveal that although all three variants remain as collapsed coils in solution, there exist significant structural differences among them at shorter timescales. A2V exhibits an enhanced double-hairpin population in comparison to the WT, similar to those reported in toxic WT Aβ₁₋₄₂ oligomers. Such double-hairpin formation is caused by hydrophobic clustering between the N-terminus and the central and C-terminal hydrophobic patches. In contrast, the A2T mutation causes the N-terminus to engage in unusual electrostatic interactions with distant residues, such as K16 and E22, resulting in a unique population comprising only the C-terminal hairpin. These findings imply that a single A2X (where X = V or T) mutation in the primarily disordered N-terminus of the Aβ₁₋₄₂ monomer can dramatically alter the β-hairpin population and switch the equilibrium toward alternative structures. The atomistically detailed, comparative view of the structural landscapes of A2V and A2T variant monomers obtained in this study can enhance our understanding of the mechanistic differences in their early-stage aggregation.

摘要

淀粉样β(Aβ)肽的聚集在阿尔茨海默病(AD)的病因中起着关键作用。最近,有报道称Aβ中的A2T突变可预防AD。有趣的是,尽管非极性A2V突变在纯合携带者中会导致早发性AD,但在杂合状态下也被发现可预防AD。由于已知Aβ单体的构象景观直接影响早期聚集机制,因此表征A2T和A2V突变对Aβ₁₋₄₂单体结构的影响非常重要。在这里,我们对溶剂化的野生型(WT)、A2V和A2T Aβ₁₋₄₂单体进行了广泛的原子级副本交换分子动力学模拟。我们的模拟表明,尽管所有三种变体在溶液中都保持为塌陷的线圈,但在较短的时间尺度上它们之间存在显著的结构差异。与WT相比,A2V表现出增强的双发夹群体,类似于有毒的WT Aβ₁₋₄₂寡聚体中报道的那些。这种双发夹的形成是由N端与中央和C端疏水斑块之间的疏水聚集引起的。相比之下,A2T突变导致N端与远处的残基(如K16和E22)发生异常的静电相互作用,从而产生仅包含C端发夹的独特群体。这些发现意味着Aβ₁₋₄₂单体主要无序的N端中的单个A2X(其中X = V或T)突变可以显著改变β发夹群体并将平衡转向替代结构。本研究中获得的A2V和A2T变体单体结构景观的原子级详细比较视图可以增强我们对其早期聚集机制差异的理解。

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