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β-内酰胺抗生素与仿生二锌配合物的结合,该配合物类似于金属β-内酰胺酶的活性位点。

Binding of β-lactam antibiotics to a bioinspired dizinc complex reminiscent of the active site of metallo-β-lactamases.

机构信息

Institute of Inorganic Chemistry, Georg-August-University Göttingen, Tammannstrasse 4, 37077 Göttingen, Germany.

出版信息

Inorg Chem. 2012 Feb 20;51(4):2486-93. doi: 10.1021/ic202425m. Epub 2012 Feb 1.

DOI:10.1021/ic202425m
PMID:22296309
Abstract

Metallo-β-lactamases (mβls) cause bacterial resistance toward a broad spectrum of β-lactam antibiotics by catalyzing the hydrolytic cleavage of the four-membered β-lactam ring, thus inactivating the drug. Minutiae of the mechanism of these enzymes are still not well understood, and reports about binding studies of the substrates to the enzymes as well as to synthetic model systems are rare. Here we report a new pyrazolate-based bioinspired dizinc complex (1) reminiscent of the active site of binuclear mβls. Since 1 does not mediate hydrolytic degradation of β-lactams, the binding of a series of common β-lactam antibiotics (benzylpenicillin, cephalotin, 6-aminopenicillanic acid, ampicillin) as well as the inhibitor sulbactam and the simplest β-lactam, 2-azetidinone, to the dizinc core of 1 could now be studied in detail by NMR and IR spectroscopy as well as mass spectrometry. X-ray crystallographic information was obtained for 1 and its complexes with 2-azetidinone (2) and sulbactam (3); the latter represents the first structurally characterized dizinc complex with a bound β-lactam drug. While 2-azetidinone was found deprotonated and bridging in the clamp of the two zinc ions in 2, in 3 and all other cases the substrates preferentially bind via their carboxylate group within the bimetallic pocket. The relevance of this binding mode for mβls and consequences for the design of functional model systems are discussed.

摘要

金属β-内酰胺酶(mβls)通过催化四元β-内酰胺环的水解裂解,使药物失活,从而导致细菌对广泛的β-内酰胺抗生素产生耐药性。这些酶的作用机制的细节仍不为人知,关于底物与酶以及与合成模型系统结合的研究报告也很少。在这里,我们报告了一种新的基于吡唑的仿生二锌配合物(1),它让人联想到双金属 mβls 的活性位点。由于 1 不能介导β-内酰胺抗生素的水解降解,因此可以通过 NMR 和 IR 光谱以及质谱详细研究一系列常见的β-内酰胺抗生素(苄青霉素、头孢噻吩、6-氨基青霉素酸、氨苄西林)以及抑制剂舒巴坦和最简单的β-内酰胺,2-氮杂环丁酮与 1 的二锌核心的结合。还获得了 1 及其与 2-氮杂环丁酮(2)和舒巴坦(3)配合物的 X 射线晶体学信息;后者代表了第一个具有结合β-内酰胺药物的结构表征的二锌配合物。虽然在 2 中,2-氮杂环丁酮被发现去质子化并在两个锌离子的夹中桥接,但在 3 和所有其他情况下,底物优先通过其羧酸盐基团在双金属口袋中结合。讨论了这种结合模式对 mβls 的相关性以及对功能模型系统设计的影响。

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引用本文的文献

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Attaching Metal-Containing Moieties to β-Lactam Antibiotics: The Case of Penicillin and Cephalosporin.将含金属部分连接到β-内酰胺抗生素上:以青霉素和头孢菌素为例。
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Metallo-β-lactamases in the Age of Multidrug Resistance: From Structure and Mechanism to Evolution, Dissemination, and Inhibitor Design.金属β-内酰胺酶在多药耐药时代:从结构和机制到进化、传播和抑制剂设计。
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