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首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >First principle calculations of ~(113)Cd chemical shifts for proteins and model systems
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First principle calculations of ~(113)Cd chemical shifts for proteins and model systems

机译:蛋白质和模型系统〜(113)Cd化学位移的第一原理计算

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~(113)Cd isotropic NMR shieldings are calculated for a number of metal ion binding sites in proteins, using the GIAO-B3LYP and GIAO-HF methods with the uncontracted (19s15p9d4f) polarized basis set of Kello and Sadlej on cadmium and 6-31G(d) on the ligands. The results compare favorably with experimental data, indicating that first principle calculations are a useful tool for structural interpretation of ~(113)Cd chemical shift data from metal ion containing proteins. The effect of different ligand types (thiolate, imidazole, water, and monodentate carboxylate), coordination number, and deviations of the coordination geometry from ideal structures is evaluated. In particular, the ligand type and coordination number are important factors, but also changes in cadmium–ligand bond lengths may cause significant changes of the chemical shift.
机译:使用GIAO-B3LYP和GIAO-HF方法以及在镉和6-31G上Kello和Sadlej的未收缩(19s15p9d4f)极化基础集的GIAO-B3LYP和GIAO-HF方法,计算了蛋白质中多个金属离子结合位点的〜(113)Cd各向同性NMR屏蔽(d)在配体上。结果与实验数据相吻合,表明第一原理计算是结构解释含金属离子的蛋白质〜(113)Cd化学位移数据的有用工具。评估了不同配体类型(硫醇盐,咪唑,水和单齿羧酸盐),配位数以及配位几何结构与理想结构的偏差的影响。特别是,配体类型和配位数是重要因素,但镉-配体键长的变化也可能导致化学位移的显着变化。

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