首页> 外文期刊>Journal of Biomolecular Structure and Dynamics >Molecular dynamics and molecular docking studies on E166A point mutant, R274N/R276N double mutant, and E166A/R274N/R276N triple mutant forms of class A β-lactamases
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Molecular dynamics and molecular docking studies on E166A point mutant, R274N/R276N double mutant, and E166A/R274N/R276N triple mutant forms of class A β-lactamases

机译:E166A点突变,R274N / R276N双突变和A166β-内酰胺酶E166A / R274N / R276N三突变形式的分子动力学和分子对接研究

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摘要

Bacterial resistance to β-lactams antibiotics is a serious threat to human health. The most common cause of resistance to the β-lactams is the production of β-lactamase that inactivates β-lactams. Specifically, class A extended-spectrum β-lactamase produced by antibiotic resistant bacteria is capable of hydrolyzing extended-spectrum Cephalosporins and Monobactams. Mutations in class A β-lactamases play a crucial role in substrate and inhibitor specificity. In this present study, the E166A point mutant, R274N/R276N double mutant, and E166A/R274N/R276N triple mutant class A β-lactamases are analyzed. Molecular dynamics (MD) simulations are done to understand the consequences of mutations in class A β-lactamases. Root mean square deviation, root mean square fluctuation, radius of gyration, solvent accessibility surface area, hydrogen bond, and essential dynamics analysis results indicate notable loss in stability for mutant class A β-lactamases. MD simulations of native and mutant structures clearly confirm that the substitution of alanine at the position of 166, Asparagine at 274 and 276 causes more flexibility in 3D space. Molecular docking results indicate the mutation in class A β-lactamases which decrease the binding affinity of Cefpirome and Ceftobiprole which are third and fifth generation Cephalosporins, respectively. MD simulation of Ceftobiprole-native and mutant type Class A β-lactamases complexes reveal that E166A/R274N/R276N mutations alter the structure and notable loss in the stability for Ceftobirole-mutant type Class A β-lactamases complexes. Ceftobiprole is currently prescribed for patients with serious bacterial infections; this phenomenon is the probable cause for the effectiveness of Ceftobiprole in controlling bacterial infections.
机译:细菌对β-内酰胺类抗生素的耐药性是对人类健康的严重威胁。抗β-内酰胺的最常见原因是使β-内酰胺失活的β-内酰胺酶的产生。具体地,由抗生素抗性细菌产生的A类广谱β-内酰胺酶能够水解广谱头孢菌素和单杆菌素。 A类β-内酰胺酶的突变在底物和抑制剂特异性中起关键作用。在本研究中,分析了E166A点突变,R274N / R276N双突变和E166A / R274N / R276N三突变A类β-内酰胺酶。进行分子动力学(MD)模拟以了解A类β-内酰胺酶突变的后果。均方根偏差,均方根波动,回转半径,溶剂可及表面积,氢键和基本动力学分析结果表明,突变体A类β-内酰胺酶的稳定性显着下降。天然和突变体结构的MD模拟清楚地证实,在166位的丙氨酸,在274位和276位的天冬酰胺取代会在3D空间中产生更大的灵活性。分子对接结果表明A类β-内酰胺酶中的突变降低了分别为第三代和第五代头孢菌素的头孢吡咯和头孢比普罗的结合亲和力。头孢双丙戊酸和突变型A类β-内酰胺酶复合物的MD模拟显示,E166A / R274N / R276N突变改变了头孢比罗尔突变型A类β-内酰胺酶复合物的结构,并显着降低了稳定性。目前,头孢比普利用于严重细菌感染的患者。这种现象可能是头孢比普林在控制细菌感染中有效性的可能原因。

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