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人源和大鼠胰岛淀粉样多肽(1-19)单体在阴离子脂质双层中的独特螺旋倾向和膜相互作用。

Distinct helix propensities and membrane interactions of human and rat IAPP(1-19) monomers in anionic lipid bilayers.

作者信息

Guo Cong, Côté Sébastien, Mousseau Normand, Wei Guanghong

机构信息

State Key Laboratory of Surface Physics, Key Laboratory for Computational Physical Sciences (MOE), and Department of Physics, Fudan University , 220 Handan Road, Shanghai 200433, China.

出版信息

J Phys Chem B. 2015 Feb 26;119(8):3366-76. doi: 10.1021/jp5111357. Epub 2015 Feb 17.

Abstract

Islet amyloid polypeptide, IAPP or amylin, is a 37-residue peptide hormone coexpressed with insulin by pancreatic β-cells. The aggregation of human IAPP (hIAPP) into amyloid deposits is associated with type II diabetes. Substantial evidence suggests that the interaction of anionic membranes with hIAPP may facilitate peptide aggregation and the N-terminal 1-19 fragment (IAPP(1-19)) plays an important role in peptide-membrane interaction. As a first step to understand how structural differences between human and rat IAPP peptides in membranes may influence the later oligomerization process, we have investigated the structures and orientations of hIAPP(1-19) and the less toxic rIAPP(1-19) (i.e., the H18R mutant of hIAPP(1-19)) monomers in anionic POPG bilayers by performing replica exchange molecular dynamics (REMD) simulations. On the basis of ∼20 μs REMD simulations started from a random coil conformation of the peptide placed in water, we find that unfolded h(r)IAPP(1-19) can insert into the bilayers and the membrane-bound peptide stays mainly at the lipid head-tail interface. hIAPP(1-19) displays higher helix propensity than rIAPP(1-19), especially in the L12-L16 region. The helix is oriented parallel to the bilayer surface and buried in the membrane 0.3-0.8 nm below the phosphorus atoms, consistent with previous electron paramagnetic resonance data. The helical conformation is an amphiphilic helix with its hydrophilic and hydrophobic faces pointing, respectively, to the lipid head and tail regions. The H18R substitution enhances the electrostatic interactions of IAPP(1-19) with the membrane, while it weakens the intrapeptide interactions crucial for helix formation, thus leading to lower helix propensity of rIAPP(1-19). Implications of our simulation results on the membrane-mediated IAPP(1-19) oligomerization are discussed.

摘要

胰岛淀粉样多肽(IAPP)或胰淀素是一种由胰腺β细胞与胰岛素共表达的含37个氨基酸残基的肽类激素。人IAPP(hIAPP)聚集成淀粉样沉积物与II型糖尿病相关。大量证据表明,阴离子膜与hIAPP的相互作用可能促进肽聚集,并且N端1 - 19片段(IAPP(1 - 19))在肽 - 膜相互作用中起重要作用。作为了解人源和大鼠源IAPP肽在膜中的结构差异如何影响后续寡聚化过程的第一步,我们通过进行复制交换分子动力学(REMD)模拟,研究了hIAPP(1 - 19)和毒性较小的rIAPP(1 - 19)(即hIAPP(1 - 19)的H18R突变体)单体在阴离子POPG双层膜中的结构和取向。基于从置于水中的肽的无规卷曲构象开始的约20微秒的REMD模拟,我们发现未折叠的h(r)IAPP(1 - 19)可以插入双层膜中,且膜结合肽主要停留在脂头 - 尾界面处。与rIAPP(1 - 19)相比,hIAPP(1 - 19)表现出更高的螺旋倾向,尤其是在L12 - L16区域。该螺旋平行于双层膜表面取向,并埋于膜中磷原子下方0.3 - 0.8纳米处,这与先前的电子顺磁共振数据一致。螺旋构象是一种两亲性螺旋,其亲水和疏水表面分别指向脂头和脂尾区域。H18R取代增强了IAPP(1 - 19)与膜的静电相互作用,同时削弱了对螺旋形成至关重要的肽内相互作用,从而导致rIAPP(1 - 19)的螺旋倾向较低。我们讨论了模拟结果对膜介导的IAPP(1 - 19)寡聚化的影响。

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