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I型和II型β-转角的理论案例研究。

A theoretical case study of type I and type II beta-turns.

作者信息

Czinki Eszter, Császár Attila G, Perczel András

机构信息

Department of Theoretical Chemistry Eötvös University, 1518 Budapest 112 P.O. Box 32, Hungary.

出版信息

Chemistry. 2003 Mar 3;9(5):1182-91. doi: 10.1002/chem.200390135.

Abstract

NMR chemical shielding anisotropy tensors have been computed by employing a medium size basis set and the GIAO-DFT(B3LYP) formalism of electronic structure theory for all of the atoms of type I and type II beta-turn models. The models contain all possible combinations of the amino acid residues Gly, Ala, Val, and Ser, with all possible side-chain orientations where applicable in a dipeptide. The several hundred structures investigated contain either constrained or optimized phi, psi, and chi dihedral angles. A statistical analysis of the resulting large database was performed and multidimensional (2D and 3D) chemical-shift/chemical-shift plots were generated. The (1)H(alpha-13)C(alpha), (13)C(alpha-1)H(alpha-13)C(beta), and (13)C(alpha-1)H(alpha-13)C' 2D and 3D plots have the notable feature that the conformers clearly cluster in distinct regions. This allows straightforward identification of the backbone and side-chain conformations of the residues forming beta-turns. Chemical shift calculations on larger For-(L-Ala)(n)-NH(2) (n=4, 6, 8) models, containing a single type I or type II beta-turn, prove that the simple models employed are adequate. A limited number of chemical shift calculations performed at the highly correlated CCSD(T) level prove the adequacy of the computational method chosen. For all nuclei, statistically averaged theoretical and experimental shifts taken from the BioMagnetic Resonance Bank (BMRB) exhibit good correlation. These results confirm and extend our previous findings that chemical shift information from selected multiple-pulse NMR experiments could be employed directly to extract folding information for polypeptides and proteins.

摘要

通过使用中等规模的基组以及电子结构理论的GIAO-DFT(B3LYP)形式,对I型和II型β-转角模型的所有原子计算了核磁共振化学屏蔽各向异性张量。这些模型包含了甘氨酸、丙氨酸、缬氨酸和丝氨酸氨基酸残基的所有可能组合,以及在二肽中适用的所有可能侧链取向。所研究的数百个结构包含受限或优化的φ、ψ和χ二面角。对所得的大型数据库进行了统计分析,并生成了多维(二维和三维)化学位移/化学位移图。(1)H(α-13)C(α)、(13)C(α-1)H(α-13)C(β)和(13)C(α-1)H(α-13)C'二维和三维图具有显著特征,即构象异构体在不同区域明显聚类。这使得能够直接识别形成β-转角的残基的主链和侧链构象。对包含单个I型或II型β-转角的较大的For-(L-丙氨酸)(n)-NH(2)(n = 4、6、8)模型进行的化学位移计算证明,所采用的简单模型是足够的。在高度相关的CCSD(T)水平上进行的有限数量的化学位移计算证明了所选计算方法的充分性。对于所有原子核,从生物磁共振库(BMRB)获取的统计平均理论和实验位移显示出良好的相关性。这些结果证实并扩展了我们之前的发现,即来自选定多脉冲核磁共振实验的化学位移信息可直接用于提取多肽和蛋白质的折叠信息。

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