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驱动膜融合的构象灵活跨膜肽的从头设计。

De novo design of conformationally flexible transmembrane peptides driving membrane fusion.

作者信息

Hofmann Mathias W, Weise Katrin, Ollesch Julian, Agrawal Prashant, Stalz Holger, Stelzer Walter, Hulsbergen Frans, de Groot Huub, Gerwert Klaus, Reed Jennifer, Langosch Dieter

机构信息

Lehrstuhl Chemie der Biopolymere, Technische Universität München, Weihenstephaner Berg 3, 85354 Freising, Germany.

出版信息

Proc Natl Acad Sci U S A. 2004 Oct 12;101(41):14776-81. doi: 10.1073/pnas.0405175101. Epub 2004 Sep 29.

Abstract

Fusion of biological membranes is mediated by distinct integral membrane proteins, e.g., soluble N-ethylmaleimide-sensitive factor attachment protein receptors and viral fusion proteins. Previous work has indicated that the transmembrane segments (TMSs) of such integral membrane proteins play an important role in fusion. Furthermore, peptide mimics of the transmembrane part can drive the fusion of liposomes, and evidence had been obtained that fusogenicity depends on their conformational flexibility. To test this hypothesis, we present a series of unnatural TMSs that were designed de novo based on the structural properties of hydrophobic residues. We find that the fusogenicity of these peptides depends on the ratio of alpha-helix-promoting Leu and beta-sheet-promoting Val residues and is enhanced by helix-destabilizing Pro and Gly residues within their hydrophobic cores. The ability of these peptides to refold from an alpha-helical state to a beta-sheet conformation and backwards was determined under different conditions. Membrane fusogenic peptides with mixed Leu/Val sequences tend to switch more readily between different conformations than a nonfusogenic peptide with an oligo-Leu core. We propose that structural flexibility of these TMSs is a prerequisite of fusogenicity.

摘要

生物膜的融合由不同的整合膜蛋白介导,例如可溶性N - 乙基马来酰亚胺敏感因子附着蛋白受体和病毒融合蛋白。先前的研究表明,此类整合膜蛋白的跨膜区段(TMSs)在融合过程中起重要作用。此外,跨膜部分的肽模拟物可驱动脂质体的融合,并且已有证据表明融合性取决于它们的构象灵活性。为了验证这一假设,我们展示了一系列基于疏水残基的结构特性从头设计的非天然TMSs。我们发现这些肽的融合性取决于促进α - 螺旋的Leu和促进β - 折叠的Val残基的比例,并在其疏水核心内被破坏螺旋的Pro和Gly残基增强。在不同条件下测定了这些肽从α - 螺旋状态重折叠为β - 折叠构象以及反向折叠的能力。具有混合Leu/Val序列的膜融合肽比具有寡聚Leu核心的非融合肽更易于在不同构象之间转换。我们提出这些TMSs的结构灵活性是融合性的先决条件。

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