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蛋白质中氟化学位移的预测。

Prediction of fluorine chemical shifts in proteins.

作者信息

Gregory D H, Gerig J T

机构信息

Department of Chemistry, University of California, Santa Barbara 93106.

出版信息

Biopolymers. 1991 Jun;31(7):845-58. doi: 10.1002/bip.360310705.

Abstract

Molecular dynamics calculations have been used in an effort to estimate the change in fluorine nmr shielding when a fluorine nucleus enters the tertiary structure of a protein. Considerations of the possible interactions that can define the shift parameter change suggest that van der Waals interactions are the leading determinant of fluorine shifts in proteins, although aromatic ring currents, other magnetic anisotropies, and electrostatic field effects could result in shift distinctions of 1 ppm or smaller. Results of our studies of a fluorine-containing analogue of the ribonuclease A S-protein/S-peptide complex indicate that static structures such as those implied by crystallographic data lead to overestimates of the magnitude of the van der Waals shielding term; molecular dynamics simulations provide indications of the effects of conformational averaging in defining this term. The treatment used predicts the correct direction of the shift change when the fluorine enters this protein environment from aqueous solution and, with an experimentally supported choice of adjustable parameters, gives agreement with the magnitude of the shift.

摘要

分子动力学计算已被用于估计当氟原子核进入蛋白质三级结构时氟核磁共振屏蔽的变化。对可能定义位移参数变化的相互作用的考虑表明,范德华相互作用是蛋白质中氟位移的主要决定因素,尽管芳香环电流、其他磁各向异性和静电场效应可能导致1 ppm或更小的位移差异。我们对核糖核酸酶A S蛋白/S肽复合物的含氟类似物的研究结果表明,诸如晶体学数据所暗示的静态结构会导致对范德华屏蔽项大小的高估;分子动力学模拟提供了构象平均在定义该项时的影响的指示。当氟从水溶液进入这种蛋白质环境时,所采用的处理方法预测了位移变化的正确方向,并且在实验支持的可调参数选择下,与位移大小相符。

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