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Structure of Staphylococcus aureus 5′-methylthioadenosine/S-adenosylhomocysteine nucleosidase

机译:金黄色葡萄球菌5-甲硫基腺苷/ S-腺苷同型半胱氨酸核苷酶的结构

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摘要

5′-Methylthioadenosine/S-adenosylhomocysteine nucleosidase (MTAN) catalyzes the irreversible cleavage of the glycosidic bond in 5′-methylthioadenosine (MTA) and S-adenosylhomocysteine (SAH) and plays a key role in four metabolic processes: biological methylation, polyamine biosynthesis, methionine recycling and bacterial quorum sensing. The absence of the nucleosidase in mammalian species has implicated this enzyme as a target for antimicrobial drug design. MTAN from the pathogenic bacterium Staphylococcus aureus (SaMTAN) has been kinetically characterized and its structure has been determined in complex with the transition-state analogue formycin A (FMA) at 1.7 Å resolution. A comparison of the SaMTAN–FMA complex with available Escherichia coli MTAN structures shows strong conservation of the overall structure and in particular of the active site. The presence of an extra water molecule, which forms a hydrogen bond to the O4′ atom of formycin A in the active site of SaMTAN, produces electron withdrawal from the ribosyl group and may explain the lower catalytic efficiency that SaMTAN exhibits when metabolizing MTA and SAH relative to the E. coli enzyme. The implications of this structure for broad-based antibiotic design are discussed.
机译:5'-甲基硫代腺苷/ S-腺苷同型半胱氨酸核苷酶(MTAN)催化5'-甲基硫代腺苷(MTA)和S-腺苷同型半胱氨酸(SAH)中糖苷键的不可逆裂解并在四个代谢过程中起关键作用:生物甲基化, ,蛋氨酸回收和细菌群体感应。哺乳动物中不存在核苷酶,暗示该酶是抗菌药物设计的目标。致病性金黄色葡萄球菌(SaMTAN)的MTAN具有动力学特性,其结构与过渡态类似物甲霉素A(FMA)的结合分辨率为1.7Å。将SaMTAN-FMA复合物与可用的大肠杆菌MTAN结构进行比较,显示出整体结构,特别是活性位点的保守性强。在SaMTAN的活性位点上与甲霉素A的O4'原子形成氢键的额外水分子的存在会导致电子从核糖基中撤出,并可能解释了SaMTAN在代谢MTA和SAH时表现出的较低的催化效率相对于大肠杆菌酶。讨论了这种结构对广泛的抗生素设计的意义。

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