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首页> 外文期刊>Journal of Agricultural and Food Chemistry >Insights into the Inhibition of Aeromonas hydrophila D-Alanine-D-Alanine Ligase by Integration of Kinetics and Structural Analysis
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Insights into the Inhibition of Aeromonas hydrophila D-Alanine-D-Alanine Ligase by Integration of Kinetics and Structural Analysis

机译:通过整合动力学和结构分析,探讨含有疏水液D-丙氨酸D-丙氨酸酶的抑制作用

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摘要

Aeromonas hydrophila, a pathogenic bacterium, is harmful to humans, domestic animals, and fishes and, moreover, of public health concern due to the emergence of multiple drug-resistant strains. The cell wall has been discovered as a novel and efficient drug target against bacteria, and D-alanine-D-alanine ligase (Ddl) is considered as an essential enzyme in bacterial cell wall biosynthesis. Herein, we studied the A. hydrophila HBNUAh01 Ddl (AhDdl) enzyme activity and kinetics and determined the crystal structure of AhDdl/D-Ala complex at 2.7 A resolution. An enzymatic assay showed that AhDdl exhibited higher affinity to ATP (K-m: 54.1 +/- 9.1 mu M) compared to D-alanine (K-m: 1.01 +/- 0.19 mM). The kinetic studies indicated a competitive inhibition of AhDdl by D-cycloserine (DCS), with an inhibition constant (K-i) of 120 mu M and the 50% inhibitory concentrations (IC50) value of 0.5 mM. Meanwhile, structural analysis indicated that the AhDdl/D-Ala complex structure adopted a semi-closed conformation form, and the active site was extremely conserved. Noteworthy is that the substrate D-Ala occupied the second D-Ala position, not the first D-Ala position. These results provided more insights for understanding the details of the catalytic mechanism and resources for the development of novel drugs against the diseases caused by A. hydrophila.
机译:Aeromonas疏水液,一种致病细菌,对人类,家畜和鱼类有害,并且由于多种耐药菌株的出现而导致公共卫生的关注。已经发现细胞壁作为细菌的新颖和有效的药物靶标,并且D-丙氨酸-D-丙氨酸连接酶(DDL)被认为是细菌细胞壁生物合成中的必需酶。在此,我们研究了A.疏水液Hbnuah01 DDL(AHDDL)酶活性和动力学,并确定了在2.7分辨率下的AHDDL / D-ALA复合物的晶体结构。与D-丙氨酸(K-M:1.01 +/- 0.19mm相比,酶测定结果表明AHDDL对ATP(K-M:54.1 +/-9.1μm)具有更高的亲和力。动力学研究表明,通过D-环丝氨酸(DCS)对AHDDL的竞争抑制,抑制常数(K-1)为120μm和50%抑制浓度(IC 50)值0.5mm。同时,结构分析表明,AHDDL / D-ALA复合结构采用半闭合构象形式,活性部位极为保守。值得注意的是衬底D-ALA占用第二D-ALA位置,而不是第一D-ALA位置。这些结果提供了了解了解催化机制和资源的细节,了解对疏水液引起的疾病的新药的催化机制和资源的细节。

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