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Covalent docking of selected boron-based serine beta-lactamase inhibitors

机译:选定的硼基丝氨酸β-内酰胺酶抑制剂的共价对接

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摘要

AmpC beta-lactamase is a hydrolytic enzyme conferring resistance to beta-lactam antibiotics in multiple Gram-negative bacteria. Therefore, identification of non-beta-lactam compounds able to inhibit the enzyme is crucial for the development of novel antibacterial therapies. In general, AmpC inhibitors have to engage the highly solvent-exposed catalytic site of the enzyme. Therefore, understanding the implications of ligand-protein induced-fit and water-mediated interactions behind the inhibitor-enzyme recognition process is fundamental for undertaking structure-based drug design process. Here, we focus on boronic acids, a promising class of beta-lactamase covalent inhibitors. First, we optimized a docking protocol able to reproduce the experimentally determined binding mode of AmpC inhibitors bearing a boronic group. This goal was pursued (1) performing rigid and flexible docking calculations aiming to establish the role of the side chain conformations; and (2) investigating the role of specific water molecules in shaping the enzyme active site and mediating ligand protein interactions. Our calculations showed that some water molecules, conserved in the majority of the considered X-ray structures, are needed to correctly predict the binding pose of known covalent AmpC inhibitors. On this basis, we formalized our findings in a docking and scoring protocol that could be useful for the structure-based design of new boronic acid AmpC inhibitors.
机译:AmpCβ-内酰胺酶是一种水解酶,可赋予多种革兰氏阴性细菌对β-内酰胺抗生素的抗性。因此,鉴定能够抑制该酶的非β-内酰胺化合物对于开发新型抗菌疗法至关重要。通常,AmpC抑制剂必须与酶高度溶剂暴露的催化位点结合。因此,了解抑制剂-酶识别过程背后的配体-蛋白质诱导的适应和水介导的相互作用的含义是进行基于结构的药物设计过程的基础。在这里,我们专注于硼酸,一种很有前途的β-内酰胺酶共价抑制剂。首先,我们优化了对接方案,能够重现实验确定的带有硼基的AmpC抑制剂的结合模式。追求这一目标(1)进行刚性和灵活的对接计算,目的是确定侧链构象的作用; (2)研究特定水分子在塑造酶活性位点和介导配体蛋白相互作用中的作用。我们的计算表明,在大多数考虑的X射线结构中保守的一些水分子需要正确预测已知的共价AmpC抑制剂的结合姿势。在此基础上,我们在对接和评分方案中正式确定了我们的发现,该方案可用于基于结构的新型硼酸AmpC抑制剂的设计。

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