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通过单晶电子顺磁共振/电子核双共振光谱和密度泛函计算揭示的铜-氨基酸配合物的结构和键合方面

Aspects of structure and bonding in copper-amino acid complexes revealed by single-crystal EPR/ENDOR spectroscopy and density functional calculations.

作者信息

Colaneri Michael J, Vitali Jacqueline, Peisach Jack

机构信息

Department of Chemistry and Physics, State University of New York at Old Westbury, Old Westbury, New York 11568, USA.

出版信息

J Phys Chem A. 2009 May 14;113(19):5700-9. doi: 10.1021/jp811249s.

Abstract

This work deduces from a series of well-defined copper-doped amino acid crystals, relationships between structural features of the copper complexes, and ligand-bound proton hyperfine parameters. These were established by combining results from electron paramagnetic resonance (EPR)/electron-nuclear double resonance (ENDOR) studies, crystallography, and were further assessed by quantum mechanical (QM) calculations. A detailed evaluation of previous studies on Cu(2+) doped into alpha-glycine, triglycine sulfate, alpha-glycylglycine, and L-alanine crystals reveal correlations between geometric features of the copper sites and proton hyperfine couplings from amino-bound and carbon-bound hydrogens. Experimental variations in proton isotropic hyperfine coupling values (a(iso)) could be fit to cosine-square dependences on dihedral angles, namely, for C(alpha)-bound hydrogens, a(iso) = -1.09 + 8.21 cos(2) theta MHz, and for amino hydrogens, a(iso) = -6.16 + 4.15 cos(2) phi MHz. For the C(alpha) hydrogens, this dependency suggests a hyperconjugative-like mechanism for transfer of spin density into the hydrogen 1s orbital. In the course of this work, it was also necessary to reanalyze the ENDOR measurements from Cu(2+)-doped alpha-glycine because the initial study determined the (14)N coupling parameters without holding its nuclear quadrupole tensor traceless. This new treatment of the data was needed to correctly align the (14)N hyperfine tensor principal directions in the molecular complex. To provide a theoretical basis for the coupling variations, QM calculations performed at the DFT level were used to compute the proton hyperfine tensors in the four crystal complexes as well as in a geometry-optimized Cu(2+)(glycine)(2) model. These theoretical calculations confirmed systematic changes in couplings with dihedral angles but greatly overestimated the experimental geometric sensitivity to the amino hydrogen isotropic coupling.

摘要

这项工作从一系列明确的铜掺杂氨基酸晶体出发,推导铜配合物的结构特征与配体结合质子超精细参数之间的关系。这些关系是通过结合电子顺磁共振(EPR)/电子 - 核双共振(ENDOR)研究、晶体学的结果建立的,并通过量子力学(QM)计算进一步评估。对先前关于掺杂到α - 甘氨酸、硫酸三甘氨酸、α - 甘氨酰甘氨酸和L - 丙氨酸晶体中的Cu(2+)的研究进行详细评估,揭示了铜位点的几何特征与氨基结合氢和碳结合氢的质子超精细耦合之间的相关性。质子各向同性超精细耦合值(a(iso))的实验变化可以拟合为对二面角的余弦平方依赖性,即,对于C(α)结合氢,a(iso) = -1.09 + 8.21 cos²θ MHz,对于氨基氢,a(iso) = -6.16 + 4.15 cos²φ MHz。对于C(α)氢,这种依赖性表明了一种类似超共轭的机制,用于将自旋密度转移到氢1s轨道。在这项工作过程中,还需要重新分析掺杂Cu(2+)的α - 甘氨酸的ENDOR测量结果,因为最初的研究在未保持其核四极张量无迹的情况下确定了(14)N耦合参数。需要对数据进行这种新的处理,以正确对齐分子配合物中(14)N超精细张量的主方向。为了为耦合变化提供理论基础,在DFT水平进行的QM计算用于计算四种晶体配合物以及几何优化的Cu(2+)(甘氨酸)₂模型中的质子超精细张量。这些理论计算证实了耦合随二面角的系统变化,但大大高估了实验对氨基氢各向同性耦合的几何敏感性。

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