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[短杆菌肽A离子通道空间结构的优化]

[Refinement of the spatial structure of the gramicidin A ion channel].

作者信息

Lomize A L, Orekhov V Iu, Arsen'ev A S

出版信息

Bioorg Khim. 1992 Feb;18(2):182-200.

PMID:1376600
Abstract

The spatial structure of the gramicidin A (GA) transmembrane ion-channel was refined on the base of cross-peak volumes measured in NOESY spectra (mixing time tau m = 100 and 200 ms). The refinement methods included the comparison of experimental cross-peak volumes with those calculated for low-energy GA conformations, dynamic averaging of the low-energy conformation set and restrained energy minimization. Accuracy of the spatial structure determination was estimated by the penalty function Fr defined as a root mean square deviation of interproton distances corresponding to the calculated and experimental cross-peak volumes. As the initial conformation we used the right-handed pi 6,3 LD pi 6,3 LD helix established on the base of NMR data regardless of the cross-peak volumes. The conformation is in a good agreement with NOE cross-peak volumes (Fr 0.2 to 0.5 A depending on NOESY spectrum). For a number of NOEs formed by the side chain protons, distances errors were found as much as 0.5-2.0 A. Restrained energy minimization procedure had little further success. However some of these errors were eliminated by the change in torsional angle chi 2 of D-Leu12 and dynamic averaging of the Val7 side chain conformations. Apparently, majority of deviations of the calculated and experimental cross-peak volumes are due to the intramolecular mobility of GA and cannot be eliminated within the framework of rigid globule model. In summary the spatial structure of GA ion-channel can be thought as a set of low-energy conformations, differing by the side chain torsion angles chi 1 Val7 and chi 2 D-Leu4 and D-Leu10 and the orientation of the C-terminal ethanolamine group. Root mean square differences between the atomic coordinates of conformations are in the range of 0.3-0.8 A.

摘要

基于在NOESY谱(混合时间τm = 100和200 ms)中测量的交叉峰体积,对短杆菌肽A(GA)跨膜离子通道的空间结构进行了优化。优化方法包括将实验交叉峰体积与针对低能量GA构象计算的交叉峰体积进行比较、低能量构象集的动态平均以及受限能量最小化。通过惩罚函数Fr估计空间结构确定的准确性,Fr定义为对应于计算和实验交叉峰体积的质子间距离的均方根偏差。作为初始构象,我们使用了基于NMR数据建立的右手π6,3 LD π6,3 LD螺旋,而不考虑交叉峰体积。该构象与NOE交叉峰体积非常吻合(根据NOESY谱,Fr为0.2至0.5 Å)。对于由侧链质子形成的一些NOE,发现距离误差高达0.5 - 2.0 Å。受限能量最小化程序进一步取得的成功有限。然而,通过D-Leu12的扭转角χ2的变化和Val7侧链构象的动态平均,消除了其中一些误差。显然,计算和实验交叉峰体积的大多数偏差是由于GA的分子内流动性,并且在刚性球体模型的框架内无法消除。总之,GA离子通道的空间结构可以被认为是一组低能量构象,它们在侧链扭转角χ1 Val7、χ2 D-Leu4和D-Leu10以及C端乙醇胺基团的取向上有所不同。构象的原子坐标之间的均方根差异在0.3 - 0.8 Å范围内。

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