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阐明多步棒酸合酶反应中的氧化顺序并鉴定其中间体。

Elucidation of the order of oxidations and identification of an intermediate in the multistep clavaminate synthase reaction.

作者信息

Salowe S P, Krol W J, Iwata-Reuyl D, Townsend C A

机构信息

Department of Chemistry, Johns Hopkins University, Baltimore, Maryland 21218.

出版信息

Biochemistry. 1991 Feb 26;30(8):2281-92. doi: 10.1021/bi00222a034.

Abstract

The enzyme clavaminate synthase (CS) catalyzes the formation of the first bicyclic intermediate in the biosynthetic pathway to the potent beta-lactamase inhibitor clavulanic acid. Our previous work has led to the proposal that the cyclization/desaturation of the substrate proclavaminate proceeds in two oxidative steps, each coupled to a decarboxylation of alpha-ketoglutarate and a reduction of dioxygen to water [Salowe, S. P., Marsh, E. N., & Townsend, C. A. (1990) Biochemistry 29, 6499-6508]. We have now employed kinetic isotope effect studies to determine the order of oxidations for CS purified from Streptomyces clavuligerus. By using (4'RS)-[4'-3H,1-14C]-rac-proclavaminate, a primary T(V/K) = 8.3 +/- 0.2 was measured from [3H]water release data, while an alpha-secondary T(V/K) = 1.06 +/- 0.01 was determined from the changing 3H/14C ratio of the product clavaminate. Values for the primary and alpha-secondary effects of 11.9 +/- 1.7 and 1.12 +/- 0.07, respectively, were obtained from the changing 3H/14C ratio of the residual proclavaminate by using new equations derived for a racemic substrate bearing isotopic label at both primary and alpha-secondary positions. Since only the first step of consecutive irreversible reactions will exhibit a V/K isotope effect, we conclude that C-4' is the initial site of oxidation in proclavaminate. As expected, no significant changes in the 3H/14C ratio of residual substrate were observed with [3-3H,1-14C]-rac-proclavaminate. However, two new tritiated compounds were produced in this incubation, apparently the result of isotope-induced branching brought about by the presence of tritium at the site of the second oxidation. One of these compounds was identified by comparison to authentic material as dihydroclavaminate, a stable intermediate that normally remains enzyme-bound. On the basis of the body of information available and the similarities to alpha-ketoglutarate-dependent dioxygenases, a comprehensive mechanistic scheme for CS is proposed to account for this unusual enzymatic transformation.

摘要

棒酸合成酶(CS)催化生物合成途径中首个双环中间体的形成,该途径可生成强效β-内酰胺酶抑制剂棒酸。我们之前的研究提出,底物前棒酸的环化/去饱和过程分两个氧化步骤进行,每个步骤都与α-酮戊二酸的脱羧以及氧气还原为水相偶联[Salowe, S. P., Marsh, E. N., & Townsend, C. A. (1990) Biochemistry 29, 6499 - 6508]。我们现在利用动力学同位素效应研究来确定从棒状链霉菌中纯化得到的CS的氧化顺序。通过使用(4'RS)-[4'-³H,1-¹⁴C]-外消旋前棒酸,从[³H]水释放数据测得一级T(V/K) = 8.3 ± 0.2,而从产物棒酸的³H/¹⁴C比值变化确定α-二级T(V/K) = 1.06 ± 0.01。通过使用为在一级和α-二级位置均带有同位素标记的外消旋底物推导的新方程,从残留前棒酸的³H/¹⁴C比值变化分别获得一级和α-二级效应的值,分别为11.9 ± 1.7和1.12 ± 0.07。由于只有连续不可逆反应的第一步会表现出V/K同位素效应,我们得出结论,前棒酸中C-4'是初始氧化位点。正如预期的那样,使用[3-³H,1-¹⁴C]-外消旋前棒酸时,未观察到残留底物的³H/¹⁴C比值有显著变化。然而,在该孵育过程中产生了两种新的含氚化合物,这显然是由于在第二次氧化位点存在氚导致的同位素诱导分支的结果。其中一种化合物通过与标准物质比较被鉴定为二氢棒酸,这是一种通常保持与酶结合的稳定中间体。基于现有的信息以及与α-酮戊二酸依赖性双加氧酶的相似性,提出了一个CS的综合机制方案来解释这种不寻常的酶促转化。

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