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氧和碳酸盐与双铜髌酰胺配合物结合的密度泛函理论研究

Density functional theory studies of oxygen and carbonate binding to a dicopper patellamide complex.

作者信息

Latifi Reza, Bagherzadeh Mojtaba, Milne Bruce F, Jaspars Marcel, de Visser Sam P

机构信息

Manchester Interdisciplinary Biocenter and School of Chemical Engineering and Analytical Science, University of Manchester, 131 Princess Street, Manchester M1 7DN, United Kingdom.

出版信息

J Inorg Biochem. 2008 Dec;102(12):2171-8. doi: 10.1016/j.jinorgbio.2008.08.009. Epub 2008 Sep 2.

DOI:10.1016/j.jinorgbio.2008.08.009
PMID:18930320
Abstract

In this work we present results of density functional theory (DFT) calculations on dicopper patellamides and their affinity for molecular oxygen and carbonate. Patellamides are cyclic octapeptides that are produced by a cyanobacterium, and may show promise as therapeutics. Thus, carbonate binding to a dicopper patellamide center gives a stable cyclic octapeptide with a twist of almost 90 degrees . The system exists in close-lying open-shell singlet and triplet spin states with two unpaired electrons in orthogonal sigma* orbitals on each metal center. Subsequently, we replaced carbonate with dioxygen and found a stable Cu2(mu-O)2 diamond shaped patellamide core. In this structure the original dioxygen bond is significantly weakened to essentially a single bond, which should enable the system to transfer these oxygen atoms to substrates. We predicted the IR and Raman spectra of the Cu2(mu-O)2 diamond shaped patellamide structure using density functional theory and found a considerable isotope effect on the O-O stretch vibration for 16O2 versus 18O2 bound structures. Our studies reveal that carbonate forms an extremely stable complex with dicopper patellamide, but that additional molecular oxygen to this system does not give a potential oxidant. Therefore, it is more likely that carbonate prepares the system for dioxygen binding by folding it into the correct configuration followed in the proposed catalytic cycle by a protonation event preceding dioxygen binding to enable the system to reorganize to form a stable Cu2(mu-O)2-patellamide cluster. Alternatively, carbonate may act as an inhibitor that blocks the catalytic activity of the system. It is anticipated that the Cu2(mu-O)2-patellamide structure is a potential active oxidant of the dicopper patellamide complex.

摘要

在这项工作中,我们展示了密度泛函理论(DFT)对双铜髌骨酰胺及其与分子氧和碳酸盐亲和力的计算结果。髌骨酰胺是由一种蓝细菌产生的环状八肽,可能具有作为治疗剂的潜力。因此,碳酸盐与双铜髌骨酰胺中心结合形成了一个稳定的环状八肽,其扭曲角度接近90度。该体系存在于紧密相邻的开壳单重态和三重态自旋状态,每个金属中心的正交σ*轨道中有两个未成对电子。随后,我们用双氧取代了碳酸盐,发现了一种稳定的Cu2(μ-O)2菱形髌骨酰胺核心。在这种结构中,原来的双氧键显著减弱至基本上为单键,这应该使该体系能够将这些氧原子转移到底物上。我们使用密度泛函理论预测了Cu2(μ-O)2菱形髌骨酰胺结构的红外和拉曼光谱,发现对于16O2与18O2结合结构,O-O伸缩振动存在相当大的同位素效应。我们的研究表明,碳酸盐与双铜髌骨酰胺形成了极其稳定的络合物,但向该体系中添加额外的分子氧并不会产生潜在的氧化剂。因此,更有可能的是,碳酸盐通过将体系折叠成正确的构型为双氧结合做准备,在所提出的催化循环中,在双氧结合之前发生质子化事件,使体系能够重新组织形成稳定的Cu2(μ-O)2 - 髌骨酰胺簇。或者,碳酸盐可能作为一种抑制剂,阻断该体系的催化活性。预计Cu2(μ-O)2 - 髌骨酰胺结构是双铜髌骨酰胺络合物的潜在活性氧化剂。

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