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环状硼酸酯可抑制所有类型的β-内酰胺酶。

Cyclic Boronates Inhibit All Classes of β-Lactamases.

作者信息

Cahill Samuel T, Cain Ricky, Wang David Y, Lohans Christopher T, Wareham David W, Oswin Henry P, Mohammed Jabril, Spencer James, Fishwick Colin W G, McDonough Michael A, Schofield Christopher J, Brem Jürgen

机构信息

Chemistry Research Laboratory, University of Oxford, Oxford, United Kingdom.

School of Chemistry, University of Leeds, Leeds, United Kingdom.

出版信息

Antimicrob Agents Chemother. 2017 Mar 24;61(4). doi: 10.1128/AAC.02260-16. Print 2017 Apr.

Abstract

β-Lactamase-mediated resistance is a growing threat to the continued use of β-lactam antibiotics. The use of the β-lactam-based serine-β-lactamase (SBL) inhibitors clavulanic acid, sulbactam, and tazobactam and, more recently, the non-β-lactam inhibitor avibactam has extended the utility of β-lactams against bacterial infections demonstrating resistance via these enzymes. These molecules are, however, ineffective against the metallo-β-lactamases (MBLs), which catalyze their hydrolysis. To date, there are no clinically available metallo-β-lactamase inhibitors. Coproduction of MBLs and SBLs in resistant infections is thus of major clinical concern. The development of "dual-action" inhibitors, targeting both SBLs and MBLs, is of interest, but this is considered difficult to achieve due to the structural and mechanistic differences between the two enzyme classes. We recently reported evidence that cyclic boronates can inhibit both serine- and metallo-β-lactamases. Here we report that cyclic boronates are able to inhibit all four classes of β-lactamase, including the class A extended spectrum β-lactamase CTX-M-15, the class C enzyme AmpC from , and class D OXA enzymes with carbapenem-hydrolyzing capabilities. We demonstrate that cyclic boronates can potentiate the use of β-lactams against Gram-negative clinical isolates expressing a variety of β-lactamases. Comparison of a crystal structure of a CTX-M-15:cyclic boronate complex with structures of cyclic boronates complexed with other β-lactamases reveals remarkable conservation of the small-molecule binding mode, supporting our proposal that these molecules work by mimicking the common tetrahedral anionic intermediate present in both serine- and metallo-β-lactamase catalysis.

摘要

β-内酰胺酶介导的耐药性对β-内酰胺类抗生素的持续使用构成了日益严重的威胁。基于β-内酰胺的丝氨酸-β-内酰胺酶(SBL)抑制剂克拉维酸、舒巴坦和他唑巴坦,以及最近的非β-内酰胺抑制剂阿维巴坦的使用,扩展了β-内酰胺类药物对通过这些酶产生耐药性的细菌感染的效用。然而,这些分子对催化其水解的金属β-内酰胺酶(MBL)无效。迄今为止,尚无临床可用的金属β-内酰胺酶抑制剂。因此,在耐药感染中MBL和SBL的共同产生是主要的临床关注点。开发同时靶向SBL和MBL的“双作用”抑制剂很有意义,但由于这两类酶在结构和作用机制上的差异,这被认为难以实现。我们最近报告了环状硼酸酯可以抑制丝氨酸-和金属β-内酰胺酶的证据。在此我们报告,环状硼酸酯能够抑制所有四类β-内酰胺酶,包括A类超广谱β-内酰胺酶CTX-M-15、C类酶AmpC以及具有碳青霉烯水解能力的D类OXA酶。我们证明,环状硼酸酯可以增强β-内酰胺类药物对表达多种β-内酰胺酶的革兰氏阴性临床分离株的作用。将CTX-M-15与环状硼酸酯复合物晶体结构与环状硼酸酯与其他β-内酰胺酶复合物的结构进行比较,发现小分子结合模式具有显著的保守性,支持了我们的观点,即这些分子通过模拟丝氨酸-和金属β-内酰胺酶催化中共同存在的四面体阴离子中间体起作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6e8/5365654/f164f7b6ca34/zac0041760270001.jpg

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