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非旋转异构体蛋白质侧链构象的能量学

The energetics of off-rotamer protein side-chain conformations.

作者信息

Petrella R J, Karplus M

机构信息

Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, MA 02138, USA.

出版信息

J Mol Biol. 2001 Oct 5;312(5):1161-75. doi: 10.1006/jmbi.2001.4965.

Abstract

Non-rotameric ("off-rotamer") conformations are commonly observed for the side-chains of protein crystal structures. This study examines whether such conformations are real or artifactual by comparing the energetics of on and off-rotamer side-chain conformations calculated with the CHARMM energy function. Energy-based predictions of side-chain orientation are carried out by rigid-geometry mapping in the presence of the fixed protein environment for 1709 non-polar side-chains in 24 proteins for which high-resolution (2.0 A or better) structures are available. For on-rotamer conformations, 97.6 % are correctly predicted; i.e. they correspond to the absolute minima of their local side-chain energy maps (generally to within 10 degrees or less). By contrast, for the observed off-rotamer side-chain conformations, 63.8 % are predicted correctly. This difference is statistically significant (P<0.001) and suggests that while most of the observed off-rotamer conformations are real, many of the erroneously predicted ones are likely to be artifacts of the X-ray refinements. Probabilities for off-rotamer conformations of the non-polar side-chains are calculated to be 5.0-6.1 % by adaptive umbrella-sampled molecular dynamics trajectories of individual amino acid residues in vacuum and in the presence of an average protein or aqueous dielectric environment. These results correspond closely to the 5.7 % off-rotamer fraction predicted by the rigid-geometry mapping studies. Since these values are about one-half of the 10.2 % off-rotamer fraction observed in the X-ray structures, they support the conclusion that many of the latter are artifacts. In both the rigid-geometry mapping and the molecular dynamics studies, the discrepancies between the predicted and observed fractions of off-rotamer conformations are largest for leucine residues (approximately 6 % versus 16.6 %). The simulations for the isolated amino acid residues indicate that the real off-rotamer frequency of 5-6 % is consistent with the internal side-chain and local side-chain-backbone energetics and does not originate from shifts due to the protein. The present results suggest that energy-based rotation maps can be used to find side-chain positional artifacts that appear in crystal structures based on refinements in the 2 A resolution range.

摘要

蛋白质晶体结构的侧链中普遍存在非旋转异构体(“非旋转异构体”)构象。本研究通过比较使用CHARMM能量函数计算的旋转异构体和非旋转异构体侧链构象的能量,来检验这些构象是真实的还是人为造成的。在固定蛋白质环境存在的情况下,通过刚性几何映射对24种蛋白质中1709个非极性侧链的侧链取向进行基于能量的预测,这些蛋白质具有高分辨率(2.0埃或更好)结构。对于旋转异构体构象,97.6%被正确预测;即它们对应于其局部侧链能量图的绝对最小值(通常在10度或更小范围内)。相比之下,对于观察到的非旋转异构体侧链构象,63.8%被正确预测。这种差异具有统计学意义(P<0.001),表明虽然观察到的大多数非旋转异构体构象是真实的,但许多错误预测的构象可能是X射线精修的人为产物。通过在真空以及存在平均蛋白质或水性介电环境的情况下对单个氨基酸残基进行自适应伞形采样分子动力学轨迹计算,非极性侧链的非旋转异构体构象概率为5.0 - 6.1%。这些结果与刚性几何映射研究预测的5.7%的非旋转异构体比例密切对应。由于这些值约为X射线结构中观察到 的10.2%非旋转异构体比例的一半,它们支持了许多后者是人为产物的结论。在刚性几何映射和分子动力学研究中,亮氨酸残基的非旋转异构体构象预测比例与观察比例之间的差异最大(约6%对16.6%)。对孤立氨基酸残基的模拟表明,5 - 6%的真实非旋转异构体频率与内部侧链和局部侧链 - 主链能量一致,并非源于蛋白质引起的位移。目前的结果表明,基于能量的旋转图可用于发现基于2埃分辨率范围内精修的晶体结构中出现的侧链位置人为产物。

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