首页> 美国卫生研究院文献>Antimicrobial Agents and Chemotherapy >Crystal Structures of Escherichia coli Topoisomerase IV ParE Subunit (24 and 43 Kilodaltons): a Single Residue Dictates Differences in Novobiocin Potency against Topoisomerase IV and DNA Gyrase
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Crystal Structures of Escherichia coli Topoisomerase IV ParE Subunit (24 and 43 Kilodaltons): a Single Residue Dictates Differences in Novobiocin Potency against Topoisomerase IV and DNA Gyrase

机译:大肠杆菌拓扑异构酶IV ParE亚基(24和43 Kilodaltons)的晶体结构:单一的残留决定新霉素对拓扑异构酶IV和DNA促旋酶的功效的差异。

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摘要

Topoisomerase IV and DNA gyrase are related bacterial type II topoisomerases that utilize the free energy from ATP hydrolysis to catalyze topological changes in the bacterial genome. The essential function of DNA gyrase is the introduction of negative DNA supercoils into the genome, whereas the essential function of topoisomerase IV is to decatenate daughter chromosomes following replication. Here, we report the crystal structures of a 43-kDa N-terminal fragment of Escherichia coli topoisomerase IV ParE subunit complexed with adenylyl-imidodiphosphate at 2.0-Å resolution and a 24-kDa N-terminal fragment of the ParE subunit complexed with novobiocin at 2.1-Å resolution. The solved ParE structures are strikingly similar to the known gyrase B (GyrB) subunit structures. We also identified single-position equivalent amino acid residues in ParE (M74) and in GyrB (I78) that, when exchanged, increased the potency of novobiocin against topoisomerase IV by nearly 20-fold (to 12 nM). The corresponding exchange in gyrase (I78 M) yielded a 20-fold decrease in the potency of novobiocin (to 1.0 μM). These data offer an explanation for the observation that novobiocin is significantly less potent against topoisomerase IV than against DNA gyrase. Additionally, the enzyme kinetic parameters were affected. In gyrase, the ATP Km increased ≈5-fold and the Vmax decreased ≈30%. In contrast, the topoisomerase IV ATP Km decreased by a factor of 6, and the Vmax increased ≈2-fold from the wild-type values. These data demonstrate that the ParE M74 and GyrB I78 side chains impart opposite effects on the enzyme's substrate affinity and catalytic efficiency.
机译:拓扑异构酶IV和DNA促旋酶是相关的细菌II型拓扑异构酶,它们利用ATP水解产生的自由能来催化细菌基因组中的拓扑变化。 DNA促旋酶的基本功能是将负的DNA超螺旋引入基因组,而拓扑异构酶IV的基本功能是在复制后确定子染色体。在这里,我们报告与腺嘌呤-亚氨基二磷酸复合的埃索氏菌拓扑异构酶IV ParE亚基的一个43 kDa N末端片段的晶体结构,其分辨率为2.0Å,与Novobiocin复合的ParE亚基的一个24 kDa N末端片段。 2.1-Å分辨率。所解析的ParE结构非常类似于已知的回旋酶B(GyrB)亚基结构。我们还鉴定了ParE(M74)和GyrB(I78)中的单位等效氨基酸残基,这些氨基酸残基进行交换后,将新霉素对拓扑异构酶IV的效力提高了近20倍(至12 nM)。促旋酶的相应交换(I78 M)使新生霉素的效力降低了20倍(至1.0μM)。这些数据为以下观察结果提供了解释:新生生物素对拓扑异构酶IV的效力明显低于对DNA促旋酶的效力。另外,酶动力学参数受到影响。在回旋酶中,ATP Km增加约5倍,而Vmax减少约30%。相反,拓扑异构酶IV ATP Km降低了6倍,而Vmax从野生型值增加了约2倍。这些数据表明,ParE M74和GyrB I78侧链对酶的底物亲和力和催化效率产生相反的影响。

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