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首页> 外文期刊>European Biophysics Journal >Structure, dynamics and topology of membrane polypeptides by oriented H-2 solid-state NMR spectroscopy
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Structure, dynamics and topology of membrane polypeptides by oriented H-2 solid-state NMR spectroscopy

机译:定向H-2固态NMR光谱分析膜多肽的结构,动力学和拓扑

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Knowledge of the structure, dynamics and interactions of polypeptides when associated with phospholipid bilayers is key to understanding the functional mechanisms of channels, antibiotics, signal- or translocation peptides. Solid-state NMR spectroscopy on samples uniaxially aligned relative to the magnetic field direction offers means to determine the alignment of polypeptide bonds and domains relative to the bilayer normal. Using this approach the N-15 chemical shift of amide bonds provides a direct indicator of the approximate helical tilt, whereas the H-2 solid-state NMR spectra acquired from peptides labelled with 3,3,3-H-2(3)-alanines contain valuable complimentary information for a more accurate analysis of tilt and rotation pitch angles. The deuterium NMR line shapes are highly sensitive to small variations in the alignment of the C-alpha-C-beta bond relative to the magnetic field direction and, therefore, also the orientational distribution of helices relative to the membrane normal. When the oriented membrane samples are investigated with their normal perpendicular to the magnetic field direction, the rate of rotational diffusion can be determined in a semi-quantitative manner and thereby the aggregation state of the peptides can be analysed. Here the deuterium NMR approach is first introduced showing results from model amphipathic helices. Thereafter investigations of the viral channel peptides Vpu(1-27) and Influenza A M2(22-46) are shown. Whereas the N-15 chemical shift data confirm the transmembrane helix alignments of these hydrophobic sequences, the deuterium spectra indicate considerable mosaic spread in the helix orientations. At least two peptide populations with differing rotational correlation times are apparent in the deuterium spectra of the viral channels suggesting an equilibrium between monomeric peptides and oligomeric channel configurations under conditions where solid-state NMR structural studies of these peptides have previously been performed.
机译:当与磷脂双层结合时,了解多肽的结构,动力学和相互作用是了解通道,抗生素,信号或转运肽的功能机制的关键。相对于磁场方向单轴对齐的样品的固态NMR光谱学提供了确定多肽键和域相对于双层法线的对齐方式的方法。使用这种方法,酰胺键的N-15化学位移可提供近似螺旋倾斜度的直接指标,而H-3固态NMR光谱则是从标有3,3,3-H-2(3)-丙氨酸含有宝贵的补充信息,可以更准确地分析倾斜和旋转俯仰角。氘核NMR线形状对C-α-C-β键相对于磁场方向的对齐方式的微小变化非常敏感,因此对螺旋相对于膜法线的方向分布也非常敏感。当以垂直于磁场方向的法线方向研究取向的膜样品时,可以以半定量的方式确定旋转扩散的速率,从而可以分析肽的聚集状态。这里首先引入氘核磁共振方法,以显示模型两亲性螺旋的结果。此后,显示了病毒通道肽Vpu(1-27)和A2型流感M22(22-46)的研究。 N-15化学位移数据证实了这些疏水序列的跨膜螺旋排列,而氘光谱表明在螺旋排列方向上有相当大的镶嵌分布。在病毒通道的氘光谱中,至少有两个具有不同旋转相关时间的肽种群是明显的,这表明在事先进行了这些肽的固态NMR结构研究的条件下,单体肽和寡聚通道构型之间达到了平衡。

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