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固态 NMR 研究副黏病毒 PIV5 融合肽在带负电荷的膜和负曲率膜中的构象和脂质相互作用

Conformation and lipid interaction of the fusion peptide of the paramyxovirus PIV5 in anionic and negative-curvature membranes from solid-state NMR.

机构信息

Department of Chemistry, Iowa State University , Ames, Iowa 50011 United States.

出版信息

J Am Chem Soc. 2014 Feb 12;136(6):2611-24. doi: 10.1021/ja4121956. Epub 2014 Jan 30.

Abstract

Viral fusion proteins catalyze the merger of the virus envelope and the target cell membrane through multiple steps of protein conformational changes. The fusion peptide domain of these proteins is important for membrane fusion, but how it causes membrane curvature and dehydration is still poorly understood. We now use solid-state NMR spectroscopy to investigate the conformation, topology, and lipid and water interactions of the fusion peptide of the PIV5 virus F protein in three lipid membranes, POPC/POPG, DOPC/DOPG, and DOPE. These membranes allow us to investigate the effects of lipid chain disorder, membrane surface charge, and intrinsic negative curvature on the fusion peptide structure. Chemical shifts and spin diffusion data indicate that the PIV5 fusion peptide is inserted into all three membranes but adopts distinct conformations: it is fully α-helical in the POPC/POPG membrane, adopts a mixed strand/helix conformation in the DOPC/DOPG membrane, and is primarily a β-strand in the DOPE membrane. (31)P NMR spectra show that the peptide retains the lamellar structure and hydration of the two anionic membranes. However, it dehydrates the DOPE membrane, destabilizes its inverted hexagonal phase, and creates an isotropic phase that is most likely a cubic phase. The ability of the β-strand conformation of the fusion peptide to generate negative Gaussian curvature and to dehydrate the membrane may be important for the formation of hemifusion intermediates in the membrane fusion pathway.

摘要

病毒融合蛋白通过多个蛋白构象变化步骤催化病毒包膜与靶细胞膜的融合。这些蛋白的融合肽结构域对于膜融合很重要,但它如何引起膜弯曲和去水合仍知之甚少。我们现在使用固态 NMR 光谱学研究了 PIV5 病毒 F 蛋白融合肽在三种脂质膜(POPC/POPG、DOPC/DOPG 和 DOPE)中的构象、拓扑结构以及与脂质和水的相互作用。这些膜使我们能够研究脂质链无序、膜表面电荷和固有负曲率对融合肽结构的影响。化学位移和自旋扩散数据表明,PIV5 融合肽插入所有三种膜中,但采用不同的构象:在 POPC/POPG 膜中完全为α-螺旋,在 DOPC/DOPG 膜中采用混合链/螺旋构象,在 DOPE 膜中主要为β-折叠。(31)P NMR 谱表明肽保留了两种阴离子膜的层状结构和水合作用。然而,它使 DOPE 膜去水合,破坏其反六方相,并形成各向同性相,最有可能是立方相。融合肽β-折叠构象产生负高斯曲率和去水合膜的能力对于膜融合途径中形成半融合中间体可能很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1172/3985871/ec67edaa73d2/ja-2013-121956_0001.jpg

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