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螺旋偶极子与膜静电学描绘了淀粉样肽自组装过程中的构象转变。

Helix Dipole and Membrane Electrostatics Delineate Conformational Transitions in the Self-Assembly of Amyloidogenic Peptides.

作者信息

Zheng Qiuchen, Carty Senegal N, Lazo Noel D

机构信息

Carlson School of Chemistry and Biochemistry, Clark University, 950 Main Street, Worcester, Massachusetts 01610, United States.

出版信息

Langmuir. 2020 Jul 28;36(29):8389-8397. doi: 10.1021/acs.langmuir.0c00723. Epub 2020 Jul 15.

Abstract

The self-assembly of amyloidogenic peptides on membrane surfaces is associated with the death of neurons and β-cells in Alzheimer's disease and type 2 diabetes, respectively. The early events of self-assembly are not known, but there is increasing evidence for the importance of the α-helix. To test the hypothesis that electrostatic interactions involving the helix dipole play a key role in membrane-mediated peptide self-assembly, we studied IAPP[11-25(S20G)-NH] (RLANFLVHSGNNFGA-NH), which under certain conditions self-assembles to form β-sheet assemblies through an α-helix-containing intermediate. In the presence of small unilamellar vesicles composed solely of zwitterionic lipids, the peptide does not self-assemble presumably because of the absence of stabilizing electrostatic interactions between the membrane surface and the helix dipole. In the presence of vesicles composed solely of anionic lipids, the peptide forms a long-lived α-helix presumably stabilized by dipole-dipole interactions between adjacent helix dipoles. This helix represents a kinetic trap that inhibits β-sheet formation. Intriguingly, when the amount of anionic lipids was decreased to mimic the ratio of zwitterionic and anionic lipids in cells, the α-helix was short-lived and underwent an α-helix to β-sheet conformational transition. Our work suggests that the helix dipole and membrane electrostatics delineate the conformational transitions occurring along the self-assembly pathway to the amyloid.

摘要

淀粉样生成肽在膜表面的自组装分别与阿尔茨海默病中的神经元死亡和2型糖尿病中的β细胞死亡有关。自组装的早期事件尚不清楚,但越来越多的证据表明α螺旋很重要。为了验证涉及螺旋偶极的静电相互作用在膜介导的肽自组装中起关键作用这一假设,我们研究了IAPP[11 - 25(S20G)-NH](RLANFLVHSGNNFGA-NH),该肽在某些条件下通过含α螺旋的中间体自组装形成β折叠聚集体。在仅由两性离子脂质组成的小单层囊泡存在下,该肽不会自组装,这可能是因为膜表面与螺旋偶极之间缺乏稳定的静电相互作用。在仅由阴离子脂质组成的囊泡存在下,该肽形成长寿命的α螺旋,可能是由相邻螺旋偶极之间的偶极 - 偶极相互作用稳定的。这种螺旋代表了一个抑制β折叠形成的动力学陷阱。有趣的是,当阴离子脂质的量减少以模拟细胞中两性离子和阴离子脂质的比例时,α螺旋寿命短暂,并经历了从α螺旋到β折叠的构象转变。我们的工作表明,螺旋偶极和膜静电作用描绘了自组装途径中向淀粉样蛋白发生的构象转变。

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