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通过固态核磁共振的化学位移振荡分析和分子动力学模拟揭示的抗生素肽阿拉米辛在磷脂双层中的结构和取向

Structure and orientation of antibiotic peptide alamethicin in phospholipid bilayers as revealed by chemical shift oscillation analysis of solid state nuclear magnetic resonance and molecular dynamics simulation.

作者信息

Nagao Takashi, Mishima Daisuke, Javkhlantugs Namsrai, Wang Jun, Ishioka Daisuke, Yokota Kiyonobu, Norisada Kazushi, Kawamura Izuru, Ueda Kazuyoshi, Naito Akira

机构信息

Graduate School of Engineering, Yokohama National University, Tokiwadai 79-5 Hodogaya-ku, Yokohama 240-8501, Japan.

Graduate School of Engineering, Yokohama National University, Tokiwadai 79-5 Hodogaya-ku, Yokohama 240-8501, Japan; Center for Nanoscience and Nanotechnology, School of Engineering and Applied Sciences, National University of Mongolia, Ulaanbaatar 14201, Mongolia.

出版信息

Biochim Biophys Acta. 2015 Nov;1848(11 Pt A):2789-98. doi: 10.1016/j.bbamem.2015.07.019. Epub 2015 Aug 3.

Abstract

The structure, topology and orientation of membrane-bound antibiotic alamethicin were studied using solid state nuclear magnetic resonance (NMR) spectroscopy. (13)C chemical shift interaction was observed in [1-(13)C]-labeled alamethicin. The isotropic chemical shift values indicated that alamethicin forms a helical structure in the entire region. The chemical shift anisotropy of the carbonyl carbon of isotopically labeled alamethicin was also analyzed with the assumption that alamethicin molecules rotate rapidly about the bilayer normal of the phospholipid bilayers. It is considered that the adjacent peptide planes form an angle of 100° or 120° when it forms α-helix or 310-helix, respectively. These properties lead to an oscillation of the chemical shift anisotropy with respect to the phase angle of the peptide plane. Anisotropic data were acquired for the 4 and 7 sites of the N- and C-termini, respectively. The results indicated that the helical axes for the N- and C-termini were tilted 17° and 32° to the bilayer normal, respectively. The chemical shift oscillation curves indicate that the N- and C-termini form the α-helix and 310-helix, respectively. The C-terminal 310-helix of alamethicin in the bilayer was experimentally observed and the unique bending structure of alamethicin was further confirmed by measuring the internuclear distances of [1-(13)C] and [(15)N] doubly-labeled alamethicin. Molecular dynamics simulation of alamethicin embedded into dimyristoyl phophatidylcholine (DMPC) bilayers indicates that the helical axes for α-helical N- and 310-helical C-termini are tilted 12° and 32° to the bilayer normal, respectively, which is in good agreement with the solid state NMR results.

摘要

使用固态核磁共振(NMR)光谱研究了膜结合抗生素阿拉米辛的结构、拓扑结构和取向。在[1-(13)C]标记的阿拉米辛中观察到了(13)C化学位移相互作用。各向同性化学位移值表明阿拉米辛在整个区域形成螺旋结构。在阿拉米辛分子围绕磷脂双层的双层法线快速旋转的假设下,还分析了同位素标记的阿拉米辛羰基碳的化学位移各向异性。据认为,当形成α-螺旋或310-螺旋时,相邻肽平面分别形成100°或120°的角度。这些性质导致化学位移各向异性相对于肽平面的相角发生振荡。分别在N端和C端的4和7位点获取了各向异性数据。结果表明,N端和C端的螺旋轴分别相对于双层法线倾斜17°和32°。化学位移振荡曲线表明,N端和C端分别形成α-螺旋和310-螺旋。通过实验观察到了双层中阿拉米辛的C端310-螺旋,并通过测量[1-(13)C]和[(15)N]双标记阿拉米辛的核间距进一步证实了阿拉米辛独特的弯曲结构。嵌入二肉豆蔻酰磷脂酰胆碱(DMPC)双层中的阿拉米辛的分子动力学模拟表明,α-螺旋N端和310-螺旋C端的螺旋轴分别相对于双层法线倾斜12°和32°,这与固态NMR结果高度一致。

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