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α-Helical Structures Drive Early Stages of Self-Assembly of Amyloidogenic Amyloid Polypeptide Aggregate Formation in Membranes

机译:α-螺旋结构驱动膜中产生淀粉样蛋白的淀粉样多肽聚集体形成的自组装的早期阶段。

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摘要

The human islet amyloid polypeptide (hIAPP) is the primary component in the toxic islet amyloid deposits in type-2 diabetes. hIAPP self-assembles to aggregates that permeabilize membranes and constitutes amyloid plaques. Uncovering the mechanisms of amyloid self-assembly is the key to understanding amyloid toxicity and treatment. Although structurally similar, hIAPP's rat counterpart, the rat islet amyloid polypeptide (rIAPP), is non-toxic. It has been a puzzle why these peptides behave so differently. We combined multiscale modelling and theory to explain the drastically different dynamics of hIAPP and rIAPP: The differences stem from electrostatic dipolar interactions. hIAPP forms pentameric aggregates with the hydrophobic residues facing the membrane core and stabilizing water-conducting pores. We give predictions for pore sizes, the number of hIAPP peptides, and aggregate morphology. We show the importance of curvature-induced stress at the early stages of hIAPP assembly and the α-helical structures over β-sheets. This agrees with recent fluorescence spectroscopy experiments.
机译:人胰岛淀粉样多肽(hIAPP)是2型糖尿病中有毒胰岛淀粉样沉积物中的主要成分。 hIAPP自组装成可透膜的聚集体,并构成淀粉样斑块。揭示淀粉样蛋白自组装的机制是理解淀粉样蛋白毒性和治疗的关键。尽管在结构上相似,hIAPP的大鼠对应物大鼠胰岛淀粉样多肽(rIAPP)无毒。为什么这些肽的行为如此不同令人困惑。我们结合了多尺度建模和理论来解释hIAPP和rIAPP的动力学大不相同:差异源自静电偶极相互作用。 hIAPP形成五聚体聚集体,疏水残基面向膜芯并稳定导水孔。我们给出了孔径,hIAPP肽数和聚集体形态的预测。我们显示了hIAPP组装的早期阶段的曲率诱导应力的重要性以及在β-折叠层上的α螺旋结构的重要性。这与最近的荧光光谱实验一致。

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