医源性病原体鲍曼不动杆菌体内必需代谢酶莽草酸激酶与莽草酸复合物的结构。

Kristin A Sutton, Jennifer Breen, Ulrike MacDonald, Janet M Beanan, Ruth Olson, Thomas A Russo, L Wayne Schultz, Timothy C Umland
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引用次数: 9

摘要

鲍曼不动杆菌是一种机会性革兰氏阴性病原体,是卫生保健相关感染的重要原因,具有高死亡率。临床分离的多药耐药(MDR)和极耐药(XDR)鲍曼不动杆菌菌株越来越多地被观察到。使这一担忧更加复杂的是,研发后期缺乏能够有效对抗耐多药和广泛耐药鲍曼杆菌的新型抗菌剂。作为解决这些问题的一部分,先前已确定莽草酸途径的两个基因(aroA和aroC)在宿主感染期间对鲍曼不动杆菌的生长和存活至关重要(即在体内至关重要)。本研究扩展了这些结果,证明鲍曼不动杆菌aroK基因编码莽草激酶(SK),在大鼠软组织感染模型中也是必需的。然后测定了鲍曼不动杆菌SK与底物莽草酸盐和硫酸盐离子(模拟ATP β-磷酸的结合相互作用)配合物的晶体结构,分辨率为1.91 Å,并对酶动力学进行了表征。将柔性莽草酸结合区域和LID区域与其他SK晶体结构中的类似区域进行了比较。讨论了可能影响抗生素开发工作的致病菌SKs之间的结构差异和序列差异的影响。
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Structure of shikimate kinase, an in vivo essential metabolic enzyme in the nosocomial pathogen Acinetobacter baumannii, in complex with shikimate.

Acinetobacter baumannii is an opportunistic Gram-negative pathogen that is an important cause of healthcare-associated infections exhibiting high mortality rates. Clinical isolates of multidrug-resistant (MDR) and extremely drug-resistant (XDR) A. baumannii strains are increasingly being observed. Compounding this concern is the dearth of new antibacterial agents in late-stage development that are effective against MDR and XDR A. baumannii. As part of an effort to address these concerns, two genes (aroA and aroC) of the shikimate pathway have previously been determined to be essential for the growth and survival of A. baumannii during host infection (i.e. to be essential in vivo). This study expands upon these results by demonstrating that the A. baumannii aroK gene, encoding shikimate kinase (SK), is also essential in vivo in a rat soft-tissue infection model. The crystal structure of A. baumannii SK in complex with the substrate shikimate and a sulfate ion that mimics the binding interactions expected for the β-phosphate of ATP was then determined to 1.91 Å resolution and the enzyme kinetics were characterized. The flexible shikimate-binding domain and LID region are compared with the analogous regions in other SK crystal structures. The impact of structural differences and sequence divergence between SKs from pathogenic bacteria that may influence antibiotic-development efforts is discussed.

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