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Control of Transmembrane Helix Dynamics by Interfacial Tryptophan Residues

机译:界面色氨酸残基对跨膜螺旋动力学的控制

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摘要

Transmembrane protein domains often contain interfacial aromatic residues, which may play a role in the insertion and stability of membrane helices. Residues such as Trp or Tyr, therefore, are often found situated at the lipid-water interface. We have examined the extent to which the precise radial locations of interfacial Trp residues may influence peptide helix orientation and dynamics. To address these questions, we have modified the GW5,19ALP23 (acetyl-GGALW5(LA)6LW19LAGA-[ethanol]amide) model peptide framework to relocate the Trp residues. Peptide orientation and dynamics were analyzed by means of solid-state nuclear magnetic resonance (NMR) spectroscopy to monitor specific 2H- and 15N-labeled residues. GW5,19ALP23 adopts a defined, tilted orientation within lipid bilayer membranes with minimal evidence of motional averaging of NMR observables, such as 2H quadrupolar or 15N-1H dipolar splittings. Here, we examine how peptide dynamics are impacted by relocating the interfacial Trp (W) residues on both ends and opposing faces of the helix, for example by a 100° rotation on the helical wheel for positions 4 and 20. In contrast to GW5,19ALP23, the modified GW4,20ALP23 helix experiences more extensive motional averaging of the NMR observables in several lipid bilayers of different thickness. Individual and combined Gaussian analyses of the 2H and 15N NMR signals confirm that the extent of dynamic averaging, particularly rotational “slippage” about the helix axis, is strongly coupled to the radial distribution of the interfacial Trp residues as well as the bilayer thickness. Additional 2H labels on alanines A3 and A21 reveal partial fraying of the helix ends. Even within the context of partial unwinding, the locations of particular Trp residues around the helix axis are prominent factors for determining transmembrane helix orientation and dynamics within the lipid membrane environment.
机译:跨膜蛋白结构域通常包含界面芳香族残基,可能在膜螺旋的插入和稳定性中起作用。因此,经常发现诸如Trp或Tyr的残基位于脂质-水的界面处。我们已经研究了界面Trp残基的精确径向位置可能会影响肽螺旋方向和动力学的程度。为了解决这些问题,我们修改了GW 5,19 ALP23(乙酰基-GGALW 5 (LA)6LW 19 LAGA- [乙醇]酰胺)模型肽框架以重新定位Trp残基。通过固态核磁共振(NMR)光谱分析肽的方向和动力学,以监测特定的 2 H-和 15 N标记的残基。 GW 5,19 ALP23在脂质双层膜内采用确定的倾斜方向,几乎没有NMR观测到的运动平均运动证据,例如 2 H四极或 15 < / sup> N- 1 H偶极分裂。在这里,我们研究了如何通过重新定位螺旋两端和相对表面上的界面Trp(W)残基来影响肽动力学,例如通过在位置4和20的螺旋轮上旋转100°来实现的。与GW < sup> 5,19 ALP23,修饰的GW 4,20 ALP23螺旋在几个不同厚度的脂质双层中对NMR观测值进行更广泛的运动平均。对 2 H和 15 N NMR信号进行的单独和组合的高斯分析证实,动态平均的程度(尤其是围绕螺旋轴的旋转“滑移”)与界面Trp残留物的径向分布以及双层厚度。丙氨酸A3和A21上的其他 2 H标签显示螺旋末端部分磨损。即使在部分展开的情况下,特定的Trp残基围绕螺旋轴的位置也是确定脂质膜环境中跨膜螺旋方向和动力学的重要因素。

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