Suppr超能文献

非共轭烯烃底物类似物与多巴胺β-单加氧酶的相互作用:催化作用及基于机制的抑制作用

Interaction of non-conjugated olefinic substrate analogues with dopamine beta-monooxygenase: catalysis and mechanism-based inhibition.

作者信息

Sirimanne S R, May S W

机构信息

School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta 30332.

出版信息

Biochem J. 1995 Feb 15;306 ( Pt 1)(Pt 1):77-85. doi: 10.1042/bj3060077.

Abstract

The reaction of dopamine beta-monooxygenase (DBM; EC 1.14.17.1) with the prototypical non-conjugated olefinic substrate, 2-(1-cyclohexenyl)ethylamine (CyHEA) [see Sirimanne and May (1988) J. Am. Chem. Soc. 110, 7560-7561], was characterized. CyHEA undergoes facile DBM-catalysed allylic hydroxylation to form (R)-2-amino-1-(1-cyclohexenyl)ethanol (CyHEA-OH) without detectable epoxidation or allylic hydroxylation to form (R)-2-amino-1-(1-cyclohexenyl)ethanol (CyHEA-OH) without detectable epoxidation or allylic rearrangement, and with stereochemistry consistent with that of DBM-catalysed benzylic hydroxylation and sulphoxidation. The kcat. of 90 s-1 for CyHEA oxygenation is about 75% of the kcat. for tyramine, the substrate commonly used in assays of DBM activity. DBM-catalysed oxygenation of CyHEA also results in mechanism-based inactivation of DBM, with the inactivation reaction yielding kinact. = 0.3 min-1 at pH 5.0 and 37 degrees C, and a partition ratio of 16,000. Although both CyHEA turnover and inactivation exhibit normal kinetics, CyHEA processing also results in gradual depletion of copper from DBM; however, mechanism-based irreversible DBM inactivation occurs independent of this copper depletion when sufficient copper is present in the assay solution. A likely mechanism for turnover-dependent DBM inactivation by CyHEA involves initial abstraction of an allylic hydrogen to form a resonance-stabilized allylic radical, which can then either partition to product or undergo attack by an active-site residue. Acyclic, non-conjugated olefinic analogues exhibit diminished substrate activity toward DBM. Thus, kcat. for oxygenation of cis-2-hexenylamine, which also produces only allylic alcohol product, is only 14% of that for CyHEA. Similarly, kinact./KI for turnover-dependent inactivation by the acyclic olefin 2-aminomethyl-1-pentene is more than an order of magnitude smaller than that for benzylic olefins. Our results establish that DBM catalyses allylic oxygenation of a number of non-conjugated olefinic substrate analogues with neither epoxidation nor allylic rearrangement occurring. The absence of epoxide products from non-conjugated olefinic substrates implies an inability of the activated copper-oxygen species of DBM to effect radical cation formation from a non-conjugated olefinic moiety. The striking contrast between DBM and cytochrome P-450, which carries out both epoxidation and allylic oxidation with non-conjugated olefinic substrates, is probably a reflection of the differences in redox potential of the activated oxygen species operative for these two enzymes.

摘要

对多巴胺β-单加氧酶(DBM;EC 1.14.17.1)与典型的非共轭烯属底物2-(1-环己烯基)乙胺(CyHEA)的反应进行了表征[见Sirimanne和May(1988年),《美国化学会志》110, 7560 - 7561]。CyHEA在DBM催化下容易发生烯丙基羟基化反应,生成(R)-2-氨基-1-(1-环己烯基)乙醇(CyHEA-OH),未检测到环氧化或烯丙基重排,其立体化学与DBM催化的苄基羟基化和亚砜氧化反应一致。CyHEA氧化反应的催化常数(kcat.)为90 s-1,约为酪胺(DBM活性测定中常用的底物)催化常数的75%。DBM催化的CyHEA氧化反应还导致基于机制的DBM失活,失活反应在pH 5.0和37℃时的失活常数(kinact.)为0.3 min-1,分配比为16,000。虽然CyHEA的周转和失活均表现出正常动力学,但CyHEA的处理也会导致DBM中的铜逐渐消耗;然而,当测定溶液中有足够的铜存在时,基于机制的不可逆DBM失活与这种铜消耗无关。CyHEA导致依赖周转的DBM失活的可能机制涉及最初夺取一个烯丙基氢以形成共振稳定的烯丙基自由基,该自由基随后可以分配到产物中或被活性位点残基攻击。无环的非共轭烯属类似物对DBM的底物活性降低。因此,顺式-2-己烯胺氧化反应的催化常数仅为CyHEA的14%,顺式-2-己烯胺氧化反应也仅产生烯丙醇产物。同样,无环烯烃2-氨基甲基-1-戊烯导致依赖周转的失活的失活常数/抑制常数(kinact./KI)比苄基烯烃小一个数量级以上。我们的结果表明,DBM催化多种非共轭烯属底物类似物的烯丙基氧化反应,且不发生环氧化或烯丙基重排。非共轭烯属底物未生成环氧化物产物,这意味着DBM的活化铜-氧物种无法使非共轭烯属部分形成自由基阳离子。DBM与细胞色素P-450之间存在显著差异,细胞色素P-450对非共轭烯属底物既进行环氧化又进行烯丙基氧化,这可能反映了这两种酶作用的活性氧物种氧化还原电位的差异。

相似文献

4
Mechanism-based inactivation of dopamine beta-hydroxylase by p-cresol and related alkylphenols.
Biochemistry. 1987 May 5;26(9):2576-83. doi: 10.1021/bi00383a025.

引用本文的文献

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验