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单三唑衍生物如何调节β-淀粉样蛋白聚集并破坏原纤维结构:分子动力学模拟的见解

How Does the Mono-Triazole Derivative Modulate Aβ Aggregation and Disrupt a Protofibril Structure: Insights from Molecular Dynamics Simulations.

作者信息

Kaur Amandeep, Kaur Anupamjeet, Goyal Deepti, Goyal Bhupesh

机构信息

Department of Chemistry, Faculty of Basic and Applied Sciences, Sri Guru Granth Sahib World University, Fatehgarh Sahib 140406, Punjab, India.

School of Chemistry & Biochemistry, Thapar Institute of Engineering & Technology, Patiala 147004, Punjab, India.

出版信息

ACS Omega. 2020 Jun 22;5(25):15606-15619. doi: 10.1021/acsomega.0c01825. eCollection 2020 Jun 30.

Abstract

Clinical studies have identified that abnormal self-assembly of amyloid-β (Aβ) peptide into toxic fibrillar aggregates is associated with the pathology of Alzheimer's disease (AD). The most acceptable therapeutic approach to stop the progression of AD is to inhibit the formation of β-sheet-rich structures. Recently, we designed and evaluated a series of novel mono-triazole derivatives -, where compound was identified as the most potent inhibitor of Aβ aggregation and disaggregates preformed Aβ fibrils significantly. Moreover, strongly averts the Cu-induced Aβ aggregation and disaggregates the preformed Cu-induced Aβ fibrils, halts the generation of reactive oxygen species, and shows neuroprotective effects in SH-SY5Y cells. However, the underlying molecular mechanism of inhibition of Aβ aggregation by and disaggregation of preformed Aβ fibrils remains obscure. In this work, molecular dynamics (MD) simulations have been performed to explore the conformational ensemble of the Aβ monomer and a pentameric protofibril structure of Aβ in the presence of . The MD simulations highlighted that binds preferentially at the central hydrophobic core region of the Aβ monomer and chains D and E of the Aβ protofibril. The dictionary of secondary structure of proteins analysis indicated that retards the conformational conversion of the helix-rich structure of the Aβ monomer into the aggregation-prone β-sheet conformation. The binding free energy calculated by the molecular mechanics Poisson-Boltzmann surface area method revealed an energetically favorable process with = -44.9 ± 3.3 kcal/mol for the Aβ monomer- complex. The free energy landscape analysis highlighted that the Aβ monomer- complex sampled conformations with significantly higher helical contents (35 and 49%) as compared to the Aβ monomer alone (17%). Compound displayed hydrogen bonding with Gly37 (chain E) and π-π interactions with Phe19 (chain D) of the Aβ protofibril. Further, the per-residue binding free energy analysis also highlighted that Phe19 (chain D) and Gly37 (chain E) of the Aβ protofibril showed the maximum contribution in the binding free energy. The decreased binding affinity and residue-residue contacts between chains D and E of the Aβ protofibril in the presence of indicate destabilization of the Aβ protofibril structure. Overall, the structural information obtained through MD simulations indicated that stabilizes the native helical conformation of the Aβ monomer and persuades a destabilization in the protofibril structure of Aβ. The results of the study will be useful in the rational design of potent inhibitors against amyloid aggregation.

摘要

临床研究已证实,淀粉样β蛋白(Aβ)肽异常自组装形成有毒的纤维状聚集体与阿尔茨海默病(AD)的病理学相关。阻止AD进展的最可接受的治疗方法是抑制富含β折叠结构的形成。最近,我们设计并评估了一系列新型单三唑衍生物,其中化合物被确定为Aβ聚集的最有效抑制剂,并能显著解聚预先形成的Aβ纤维。此外,强烈避免铜诱导的Aβ聚集,并解聚预先形成的铜诱导的Aβ纤维,阻止活性氧的产生,并在SH-SY5Y细胞中显示出神经保护作用。然而,抑制Aβ聚集和解聚预先形成的Aβ纤维的潜在分子机制仍不清楚。在这项工作中,进行了分子动力学(MD)模拟,以探索在存在的情况下Aβ单体和Aβ五聚体原纤维结构的构象集合。MD模拟突出显示,优先结合在Aβ单体的中央疏水核心区域以及Aβ原纤维的D链和E链。蛋白质二级结构分析字典表明,阻碍了Aβ单体富含螺旋结构向易于聚集的β折叠构象的构象转变。通过分子力学泊松-玻尔兹曼表面积方法计算的结合自由能揭示了一个能量有利的过程,Aβ单体-复合物的结合自由能为 = -44.9 ± 3.3 kcal/mol。自由能景观分析突出显示,与单独的Aβ单体(17%)相比,Aβ单体-复合物采样的构象具有显著更高的螺旋含量(35%和49%)。化合物与Aβ原纤维的Gly37(E链)形成氢键,并与Phe19(D链)形成π-π相互作用。此外,每个残基的结合自由能分析还突出显示,Aβ原纤维的Phe19(D链)和Gly37(E链)在结合自由能中贡献最大。在存在的情况下,Aβ原纤维D链和E链之间结合亲和力和残基-残基接触的降低表明Aβ原纤维结构的不稳定。总体而言,通过MD模拟获得的结构信息表明,稳定了Aβ单体的天然螺旋构象,并促使Aβ原纤维结构不稳定。该研究结果将有助于合理设计针对淀粉样聚集的有效抑制剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dc30/7331201/0eebb38c678a/ao0c01825_0001.jpg

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