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Effect of the English Familial Disease Mutation (H6R)on the Monomers and Dimers of Aβ40 and Aβ42

机译:英国家族性疾病突变(H6R)的影响Aβ40和Aβ42的单体和二聚体的研究

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摘要

The self-assembly of the amyloid beta (Aβ) peptides into senile plaques is the hallmark of Alzheimer’s disease. Recent experiments have shown that the English familial disease mutation (H6R) speeds up the fibril formation process of alloforms Aβ40 and Aβ42 peptides altering their toxicity to cells. We used all-atom molecular dynamics simulations at microsecond time scales with the OPLS-AA force field and TIP4P explicit water model to study the structural dynamics of the monomer and dimer of H6R sequences of both peptides. The reason behind the self-assembly acceleration is common that upon mutation the net charge is reduced leading to the weaker repulsive interaction between chains that facilitates the peptide association. In addition, our estimation of the solvation free energy shows that the mutation enhances the hydrophobicity of both peptides speeding up their aggregation. However, we can show that the acceleration mechanisms are different for different peptides: the rate of fibril formation of Aβ42 increases due to increased β-structure at the C-terminal in both monomer anddimer and enhanced stability of salt bridge Asp23-Lys28 in monomer,while the enhancement of turn at residues 25–29 and reductionof coil in regions 10–13, 26–19, and 30–34 wouldplay the key role for Aβ40. Overall, our study providesa detailed atomistic picture of the H6R-mediated conformational changesthat are consistent with the experimental findings and highlightsthe important role of the N-terminal in Aβ peptide aggregation.
机译:淀粉样β(Aβ)肽自组装成老年斑是阿尔茨海默氏病的标志。最近的实验表明,英国家族性疾病突变(H6R)加快了同种型Aβ40和Aβ42肽的原纤维形成过程,从而改变了它们对细胞的毒性。我们使用OPLS-AA力场和TIP4P显式水模型在微秒级的全原子分子动力学模拟中研究了两种肽的H6R序列的单体和二聚体的结构动力学。自组装加速背后的原因是普遍的,即突变后净电荷减少,导致链之间较弱的排斥相互作用,从而促进了肽缔合。另外,我们对溶剂化自由能的估计表明,突变增强了两种肽的疏水性,从而加速了它们的聚集。但是,我们可以证明不同肽段的加速机制不同:Aβ42的原纤维形成速率由于单体和C端C端β结构的增加而增加。盐桥Asp23-Lys28在单体中的二聚体和增强的稳定性,而提高25-29号残基的转弯率并减少10–13、26–19和30–34区域中的线圈数量将在Aβ40中起关键作用。总体而言,我们的研究提供H6R介导的构象变化的详细原子图与实验结果和亮点一致N末端在Aβ肽聚集中的重要作用。

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