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Design, synthesis and biological evaluation of non-covalent AmpC beta-lactamases inhibitors

机译:非共价AMPCβ-内酰胺酶抑制剂的设计,合成和生物学评价

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摘要

Bacterial resistance represents a worldwide emergency threatening the efficacy of all available antibiotics. Among the several resistance mechanisms developed by bacteria, beta-lactamase enzymes (BLs), which are able to inactivate most beta-lactam core antibiotics, represent a key target to block, thus prolonging antibiotics half-life. Several approaches aimed at inhibiting beta-lactamases have been so far undertaken, mainly involving beta-lactam-like or covalent inhibitors. Applying a structure-based de novo design approach, we recently discovered a novel, non-covalent and competitive inhibitor of AmpC beta-lactamase: lead 1. It has a K-i of 1 mu M, a ligand efficiency of 0.38 kcal mol(-1) and lead-like physical properties. Moreover, it reverts resistance to ceftazidime in bacterial pathogens expressing AmpC and does not up-regulate beta-lactamases expression in cell culture. Its features make it a good candidate for chemical optimization: starting from lead 1 crystallographic complex with AmpC, 11 analogs were designed to complement additional AmpC sites, then synthesized and tested against clinically resistant pathogens. While the new inhibitors maintain similar in vitro activity as the starting lead, some of them, in biological assays, extert a higher potency showing improved synergic activity with ceftazidime in resistant clinically isolated strains.
机译:细菌抗性代表全球紧急威胁威胁所有可用抗生素的疗效。在细菌,β-内酰胺酶(BLS)开发的几种电阻机制中,能够灭活大多数β-内酰胺核心抗生素的β-内酰胺酶(BLS)代表障碍的关键靶标,从而延长抗生素半衰期。到目前为止,已经涉及β-内酰胺样或共价抑制剂的旨在抑制β-内酰胺酶的几种方法。应用基于结构的DE Novo设计方法,我们最近发现了一种新型,非共价和竞争性抑制剂的AMPCβ-内酰胺酶:铅1.它具有1μm的ki,配体效率为0.38kcal摩尔(-1 )和铅的物理性质。此外,它在表达AMPC的细菌病原体中恢复对头孢他啶的抗性,并且在细胞培养中没有上调β-内酰胺酶的表达。其特征使其成为化学优化的良好候选者:从引线1与AMPC的晶体复合物开始,设计了11种类似物以补充额外的AMPC位点,然后合成并测试临床抗性病原体。虽然新的抑制剂在生物测定中保持类似的体外活性作为起始铅,其中一些在生物测定中,extRT较高的效力,显示出在抗性临床上分离的菌株中的CEFTAZIDIME改善协同活性。

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