Electrostatic interactions influence diazabicyclooctane inhibitor potency against OXA-48-like β-lactamases.

IF 3.6 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Joseph F Hoff, Kirsty E Goudar, Karina Calvopiña, Michael Beer, Philip Hinchliffe, John M Shaw, Catherine L Tooke, Yuiko Takebayashi, Andrew F Cadzow, Nicholas J Harmer, Adrian J Mulholland, Christopher J Schofield, James Spencer
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Abstract

Carbapenemases, β-lactamases hydrolysing carbapenem antibiotics, challenge the treatment of multi-drug resistant bacteria. The OXA-48 carbapenemase is widely disseminated in Enterobacterales, necessitating new treatments for producer strains. Diazabicyclooctane (DBO) inhibitors, including avibactam and nacubactam, act on a wide range of enzymes to overcome β-lactamase-mediated resistance. Here we describe investigations on how avibactam and nacubactam inhibit OXA-48 and two variants, OXA-163 and OXA-405, with deletions in the β5-β6 loop neighbouring the active site that modify activity towards different β-lactam classes. Nacubactam is ∼80-fold less potent than avibactam towards OXA-48, but this difference reduces in OXA-163 and OXA-405. Crystal structures and molecular dynamics simulations reveal electrostatic repulsion between Arg214 on the OXA-48 β5-β6 active-site loop and nacubactam, but not avibactam; effects absent from simulations of OXA-163 and OXA-405, which lack Arg214. Crystallographic and mass spectrometry data demonstrate that all three enzymes support desulfation of the bound DBOs. The results indicate that interactions with Arg214 affect DBO potency, suggesting that sequence variation in OXA-48-like β-lactamases affects reactivity towards inhibitors as well as β-lactam substrates.

静电相互作用影响重氮杂环辛烷抑制剂对抗oxa -48样β-内酰胺酶的效力。
碳青霉烯酶,β-内酰胺酶水解碳青霉烯类抗生素,挑战多重耐药细菌的治疗。OXA-48碳青霉烯酶在肠杆菌中广泛分布,需要对产生菌进行新的处理。重氮比环辛烷(DBO)抑制剂,包括阿维巴坦和纳库巴坦,作用于多种酶以克服β-内酰胺酶介导的耐药性。在这里,我们描述了对阿维巴坦和纳库巴坦如何抑制OXA-48和两个变体OXA-163和OXA-405的研究,其中邻近活性位点的β5-β6环缺失改变了对不同β-内酰胺类的活性。纳库巴坦对OXA-48的效力比阿维巴坦低约80倍,但这种差异在OXA-163和OXA-405中有所降低。晶体结构和分子动力学模拟表明,OXA-48 β5-β6活性位点环上的Arg214与纳古巴坦存在静电斥力,而非阿维巴坦;缺乏Arg214的OXA-163和OXA-405模拟不存在这种效应。晶体学和质谱数据表明,这三种酶都支持结合的DBOs的脱硫。结果表明,与Arg214的相互作用影响DBO效力,表明oxa -48样β-内酰胺酶的序列变化影响对抑制剂和β-内酰胺底物的反应性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
2.40%
发文量
129
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