首页> 外文期刊>Journal of the American Chemical Society >STUDIES OF ACYL-COA DEHYDROGENASE CATALYZED ALLYLIC ISOMERIZATION - A ONE-BASE OR TWO-BASE MECHANISM
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STUDIES OF ACYL-COA DEHYDROGENASE CATALYZED ALLYLIC ISOMERIZATION - A ONE-BASE OR TWO-BASE MECHANISM

机译:酰基-CoA脱氢酶催化的烯丙基异构化的研究-一碱基或两碱基机理

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Acyl-CoA dehydrogenases are flavoproteins that catalyze the conversion of a fatty acyl thioester substrate to the corresponding alpha,beta-enoyl-CoA product. It has been well established that a glutamate residue in the active site [e.g., E367 in short-chain acyl-CoA dehydrogenase (SCAD) of Megasphaera elsdenii] is responsible for the initial alpha-proton abstraction. Early studies have also shown that this class of enzymes is capable of catalyzing gamma-H abstraction to afford the allylic isomerization between alpha,beta- and beta,gamma-enone thioesters and/or inactivation by 2- or 3-acetylenic acyl-CoA derivatives. Although a dual role has been proposed for the glutamate residue in both alpha- and gamma-deprotonation, the existence of a second active-site basic group to mediate the observed reactions occurring at gamma-C remains a feasible mechanism. In an attempt to discern between these two possibilities, we have prepared a few oxirane-containing acyl-CoA derivatives aimed at trapping active-site bases in the vicinity of the alpha- and/or gamma-C. It was found that 2,3-epoxybutyryl-CoA is a new class-selective irreversible inactivator against SCAD; however, the inability of other oxirane-containing probes to react with these enzymes prompted us to tackle this mechanistic problem by directly studying the role of Glu-367 in SCAD-catalyzed 1,3-isomerization. The effect of E367Q mutation on the proficiency of SCAD to mediate the gamma-H exchange of crotonoyl-CoA was examined. The capabilities of the wild-type SCAD and its E367Q mutant to catalyze the gamma-H abstraction during the inactivation by 2-butynoyl-CoA was also compared. The fact that the mutant protein fails to promote gamma-H exchange/abstraction provides strong evidence supporting a one-base mechanism of this enzyme-catalyzed allylic isomerization. Since the catalysis of acyl-CoA dehydrogenases is closely related, such a one-base mechanism is expected to be conserved within this family of enzymes.
机译:酰基-CoA脱氢酶是黄素蛋白,可催化脂肪酰基硫代酯底物转化为相应的α,β-烯丙基-CoA产物。已经充分确定,活性位点中的谷氨酸残基[例如,伊氏加氏乳杆菌的短链酰基-CoA脱氢酶(SCAD)中的E367]负责最初的α-质子提取。早期研究还表明,这类酶能够催化γ-H提取,以提供α,β-和β,γ-烯酮硫酯之间的烯丙基异构化和/或被2-或3-炔属酰基-CoA衍生物灭活。 。尽管已提出在α-去质子化和γ-去质子化中谷氨酸残基具有双重作用,但是存在第二个活性位点碱性基团来介导在γ-C处观察到的反应仍然是可行的机制。为了区分这两种可能性,我们制备了一些含环氧乙烷的酰基-CoA衍生物,旨在将活性位点碱基捕获在α-和/或γ-C附近。发现2,3-环氧丁酰基-CoA是一种针对SCAD的新的类选择性不可逆灭活剂。然而,其他含环氧乙烷的探针无法与这些酶反应,促使我们通过直接研究Glu-367在SCAD催化的1,3-异构化中的作用来解决这一机械问题。检查了E367Q突变对SCAD介导巴豆酰辅酶A的γ-H交换能力的影响。还比较了野生型SCAD及其E367Q突变体在被2-丁酰基-CoA灭活期间催化γ-H提取的能力。突变蛋白不能促进γ-H交换/吸收的事实提供了强有力的证据,支持这种酶催化的烯丙基异构化的一碱基机制。由于酰基辅酶A脱氢酶的催化作用密切相关,因此在这种酶家族中,这种单碱基机制有望得以保留。

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