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首页> 外文期刊>Journal of Molecular Biology >High-resolution orientation and depth of insertion of the voltage-sensing S4 helix of a potassium channel in lipid bilayers.
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High-resolution orientation and depth of insertion of the voltage-sensing S4 helix of a potassium channel in lipid bilayers.

机译:脂质双层中钾通道的电压感应S4螺旋的高分辨率方向和插入深度。

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摘要

The opening and closing of voltage-gated potassium (Kv) channels are controlled by several conserved Arg residues in the S4 helix of the voltage-sensing domain. The interaction of these positively charged Arg residues with the lipid membrane has been of intense interest for understanding how membrane proteins fold to allow charged residues to insert into lipid bilayers against free-energy barriers. Using solid-state NMR, we have now determined the orientation and insertion depth of the S4 peptide of the KvAP channel in lipid bilayers. Two-dimensional (15)N correlation experiments of macroscopically oriented S4 peptide in phospholipid bilayers revealed a tilt angle of 40 degrees and two possible rotation angles differing by 180 degrees around the helix axis. Remarkably, the tilt angle and one of the two rotation angles are identical to those of the S4 helix in the intact voltage-sensing domain, suggesting that interactions between the S4 segment and other helices of the voltage-sensing domain are not essential for the membrane topology of the S4 helix. (13)C-(31)P distances between the S4 backbone and the lipid (31)P indicate a approximately 9 A local thinning and 2 A average thinning of the DMPC (1,2-dimyristoyl-sn-glycero-3-phosphochloline)/DMPG (1,2-dimyristoyl-sn-glycero-3-phosphatidylglycerol) bilayer, consistent with neutron diffraction data. Moreover, a short distance of 4.6 A from the guanidinium C(zeta) of the second Arg to (31)P indicates the existence of guanidinium phosphate hydrogen bonding and salt bridges. These data suggest that the structure of the Kv gating helix is mainly determined by protein-lipid interactions instead of interhelical protein-protein interactions, and the S4 amino acid sequence encodes sufficient information for the membrane topology of this crucial gating helix.
机译:电压门控钾(Kv)通道的打开和关闭由电压感测域S4螺旋中的几个保守Arg残基控制。这些带正电的Arg残基与脂质膜的相互作用引起人们极大的兴趣,以了解膜蛋白如何折叠以允许带电的残基插入脂质双层中以对抗自由能屏障。使用固态NMR,我们现在已经确定了脂质双层中KvAP通道的S4肽的方向和插入深度。磷脂双层中宏观取向的S4肽的二维(15)N相关性实验显示,倾斜角为40度,两个可能的旋转角围绕螺旋轴相差180度。值得注意的是,倾斜角和两个旋转角之一与完整的电压感测域中的S4螺旋角相同,这表明S4片段与电压感测域的其他螺旋之间的相互作用对于膜不是必需的S4螺旋的拓扑。 S4骨架和脂质(31)P之间的(13)C-(31)P距离表明DMPC(1,2-二肉豆蔻酰基-sn-甘油-3-磷酸胆碱的局部稀疏和2A平均稀疏)/ DMPG(1,2-二肉豆蔻酰基-sn-甘油-3-磷脂酰甘油)双层,与中子衍射数据一致。此外,从第二个Arg的胍基C(zeta)到(31)P的短距离为4.6 A,表明存在磷酸胍基氢键和盐桥。这些数据表明,Kv门控螺旋的结构主要由蛋白质-脂质相互作用而非螺旋间的蛋白质-蛋白质相互作用决定,并且S4氨基酸序列为该关键门控螺旋的膜拓扑结构编码了足够的信息。

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