首页> 外文期刊>The Biochemical Journal >Experimental evidence for a metallohydrolase mechanism in which the nucleophile is not delivered by a metal ion: EPR spectrokinetic and structural studies of aminopeptidase from Vibrio proteolyticus
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Experimental evidence for a metallohydrolase mechanism in which the nucleophile is not delivered by a metal ion: EPR spectrokinetic and structural studies of aminopeptidase from Vibrio proteolyticus

机译:金属亲水解酶不通过金属离子传递的金属水解酶机理的实验证据:蛋白水解弧菌氨基肽酶的EPR光谱动力学和结构研究

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Metallohydrolases catalyse some of the most important reactions in biology and are targets for numerous chemotherapeutic agents designed to combat bacterial infectivity, antibiotic resistance, HIV infectivity, tumour growth, angiogenesis and immune disorders. Rational design of inhibitors of these enzymes with chemotherapeutic potential relies on detailed knowledge of the catalytic mechanism. The roles of the catalytic transition ions in these enzymes have long been assumed to include the activation and delivery of a nucleophilic hydroxy moiety. In the present study, catalytic intermediates in the hydrolysis of L-leucyl-L-leucyl-L-leucine by Vibrio proteolyticus aminopeptidase were characterized in spectrokinetic and structural studies. Rapid-freeze-quench EPR studies of reaction products of L-leucyl-L-leucyl-L-leucine and Co(II)-substituted aminopeptidase, and comparison of the EPR data with those from structurally characterized complexes of aminopeptidase with inhibitors, indicated the formation of a catalytically competent post-Michaelis pre-transition state intermediate with a structure analogous to that of the inhibited complex with bestatin. The X-ray crystal structure of an aminopeptidase-L-leucyl-L-leucyl-L-leucine complex was also analogous to that of the bestatin complex. In these structures, no water/hydroxy group was observed bound to the essential metal ion. However, a water/hydroxy group was clearly identified that was bound to the metal-ligating oxygen atom of Glu(152). This water/ hydroxy group is proposed as a candidate for the active nucleophile in a novel metallohydrolase mechanism that shares features of the catalytic mechanisms of aspartic proteases and of B2 metallo-beta-lactamases. Preliminary studies on site-directed variants are consistent with the proposal. Other features of the structure suggest roles for the dinuclear centre in geometrically and electrophilically activating the substrate.
机译:金属水解酶催化生物学上一些最重要的反应,并且是旨在对抗细菌感染性,抗生素抗性,HIV感染性,肿瘤生长,血管生成和免疫疾病的众多化学治疗剂的目标。这些具有化学治疗潜力的酶抑制剂的合理设计取决于对催化机理的详细了解。长期以来,人们一直认为催化过渡离子在这些酶中的作用包括亲核羟基部分的活化和传递。在本研究中,在蛋白水解动力学和结构研究中表征了通过蛋白水解弧菌氨基肽酶水解L-亮氨酰-L-亮氨酰-L-亮氨酸的催化中间体。对L-亮氨酰-L-亮氨酰-L-亮氨酸和Co(II)取代的氨基肽酶反应产物进行快速冷冻猝灭EPR研究,并将EPR数据与氨基肽酶与抑制剂的结构特征复合物的EPR数据进行比较,表明形成具有催化活性的米高斯后过渡态中间体,该中间体的结构类似于与抑制素形成的复合物的结构。氨基肽酶-L-亮氨酰-L-亮氨酰-L-亮氨酸复合物的X射线晶体结构也类似于贝他汀复合物。在这些结构中,没有观察到水/羟基键合到基本金属离子上。但是,清楚地确定了与Glu(152)的金属连接氧原子结合的水/羟基。在新颖的金属水解酶机制中,该水/羟基被提议作为活性亲核试剂的候选物,该机制具有天冬氨酸蛋白酶和B2金属-β-内酰胺酶催化机制的特征。对定点变异的初步研究与该提议是一致的。该结构的其他特征暗示了双核中心在几何和亲电活化底物中的作用。

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