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Carboxylate binding in copper histidine complexes in solution and in zeolite Y: X- and W-band pulsed EPR/ENDOR combined with DFT calculations

机译:在溶液和沸石中的组氨酸络合物中的羧酸盐结合Y:X-和W-带脉冲EpR / ENDOR结合DFT计算

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摘要

The complexes of copper with histidine exhibit a wide variety of coordination modes in aqueous solution. This stems from the three potential coordination sites of the histidine molecule and the existence of mono- and bis-complexes. The present work concentrates on the determination of the carboxylate binding mode, via the (13)C hyperfine coupling of the carboxyl, in a number of copper complexes in frozen solutions. These are then used as references for the determination of the coordination mode of two zeolite encapsulated complexes. The (13)C hyperfine coupling (sign and magnitude) was determined by a variety of advanced pulsed EPR and electron-nuclear double resonance (ENDOR) techniques carried out at conventional and high magnetic fields. These showed that while the carboxyl (13)C isotropic hyperfine coupling of an equatorially coordinated carboxylate is negative with a magnitude of 3-4 MHz, that of a free carboxylate is small ( approximately 1 MHz) and positive. To rationalize the experimentally determined ligand hyperfine couplings ((1)H and (13)C) and further understand their dependence on the coordination mode and degree of protonation, density functional theory (DFT) calculations were carried out on a number of model complexes, representing the different Cu-histidine complexes studied experimentally. The exchange-correlation functional used for the calculation of the EPR parameters was B3LYP with triple-zeta plus polarization (TZP) quality basis sets. While the polarization agreement between the magnitudes of the calculated and experimental values varied among the various nuclei, sometimes exhibiting deviations of up to 40%, an excellent agreement was found for the sign prediction. This shows the unique advantage of combining high field ENDOR, by which the sign of the hyperfine can often be determined, with DFT predictions for structure determination.
机译:铜与组氨酸的络合物在水溶液中表现出多种配位模式。这源于组氨酸分子的三个潜在配位位点以及单和双复合物的存在。本工作着重于通过冷冻溶液中许多铜络合物中羧基的(13)C超精细偶联来确定羧酸酯结合模式。然后将它们用作确定两种沸石包封的配合物的配位模式的参考。 (13)C超精细耦合(符号和幅度)由在常规磁场和强磁场下执行的各种先进脉冲EPR和电子核双共振(ENDOR)技术确定。这些表明,虽然赤道配位的羧酸盐的羧基(13)C各向同性超精细偶联为负值,幅度为3-4 MHz,但游离羧酸盐的羧基(13)C各向同性超精细偶合值较小(约1 MHz),为正值。为了合理化实验确定的配体超精细偶联((1)H和(13)C)并进一步了解它们对配位模式和质子化程度的依赖性,对多种模型配合物进行了密度泛函理论(DFT)计算,代表不同的铜组氨酸复合物的实验研究。用于计算EPR参数的交换相关函数是具有三点加极化(TZP)质量基础集的B3LYP。尽管计算值和实验值的大小之间的极化一致性在各个原子核之间有所不同,有时表现出高达40%的偏差,但对于符号预测却发现了极好的一致性。这显示了结合高场ENDOR的独特优势,通过它可以经常确定超精细的符号和用于结构确定的DFT预测。

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