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螺旋中间体的形成及其在两栖动物抗菌肽淀粉样纤维中的作用。

Helical intermediate formation and its role in amyloids of an amphibian antimicrobial peptide.

机构信息

IITB-Monash Research Academy, Indian Institute of Technology Bombay, Mumbai 400076, India.

School of Chemistry, Monash University, Clayton 3800, Victoria, Australia.

出版信息

Phys Chem Chem Phys. 2023 May 3;25(17):12134-12147. doi: 10.1039/d3cp00104k.

Abstract

Helical intermediates appear to be crucial in the amyloid formation of several amyloidogenic peptides, including Aβ, that are implicated in different neurodegenerative diseases. Intermediate species of amyloid formation have been reported to be more toxic than mature amyloid fibrils. Hence, the current work focuses on understanding the mechanistic roles of the helical intermediates in the early stages of amyloid self-assembly in amyloidogenic peptides. Molecular dynamics (MD) simulations and the adaptive biasing force (ABF) method were utilized to investigate structural changes that lead to amyloid formation in amphibian peptide uperin-3.5 (U3.5), an antimicrobial and amyloidogenic peptide. Microsecond time-scale MD simulations revealed that peptide aggregation, into β-sheet dominated aggregates, is centred on two important factors; evolution of α-helical intermediates and the critical role of local peptide concentration inside these aggregates. Electrostatic attraction between the oppositely charged aspartate () and arginine () residues located near the N-terminus induced hydrogen bonding resulting in the formation of precursor 3-helices close to the N-terminus. The 3-helices transitioned into α-helices, thereby imparting partial helical conformations to the peptides. In the initial stages of aggregation, U3.5 peptides with amphipathic, partial helices were driven closer by hydrophobic interactions to form small clusters of helical intermediates. These helices imparted stability to the helical intermediates, which promoted the growth of clusters by further addition of peptides. This led to an increase in the local peptide concentration, which enabled stronger peptide-peptide interactions and triggered a β-sheet transition in these aggregates. Thus, this study emphasized that the helical intermediates may be crucial to the evolution of β-sheet-rich amyloid structures.

摘要

螺旋中间体似乎在几种淀粉样肽的淀粉样形成中起着至关重要的作用,包括与不同神经退行性疾病有关的 Aβ。据报道,淀粉样形成的中间体比成熟的淀粉样纤维更具毒性。因此,目前的工作重点是了解螺旋中间体在淀粉样肽的淀粉样自组装早期阶段的机械作用。利用分子动力学 (MD) 模拟和自适应偏置力 (ABF) 方法研究了导致两栖肽uperin-3.5 (U3.5) 形成淀粉样的结构变化,U3.5 是一种抗菌和淀粉样肽。微秒时间尺度的 MD 模拟表明,肽聚集形成β-折叠为主的聚集体,集中在两个重要因素上;α-螺旋中间体的演化和这些聚集体内部局部肽浓度的关键作用。位于 N 端附近的带相反电荷的天冬氨酸 () 和精氨酸 () 残基之间的静电吸引诱导氢键形成,导致靠近 N 端形成前体 3-螺旋。3-螺旋过渡到α-螺旋,从而使肽具有部分螺旋构象。在聚集的初始阶段,具有两亲性和部分螺旋的 U3.5 肽通过疏水相互作用更接近地驱动,形成螺旋中间体的小簇。这些螺旋赋予螺旋中间体稳定性,通过进一步添加肽来促进簇的生长。这导致局部肽浓度增加,从而使肽-肽相互作用更强,并在这些聚集体中触发β-折叠转变。因此,这项研究强调,螺旋中间体可能对富含β-折叠的淀粉样结构的演变至关重要。

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