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重组人犬尿氨酸3-羟化酶的功能特性及作用机制

Functional characterization and mechanism of action of recombinant human kynurenine 3-hydroxylase.

作者信息

Breton J, Avanzi N, Magagnin S, Covini N, Magistrelli G, Cozzi L, Isacchi A

机构信息

Department of Biology, Pharmacia & Upjohn, Nerviano, Italy.

出版信息

Eur J Biochem. 2000 Feb;267(4):1092-9. doi: 10.1046/j.1432-1327.2000.01104.x.

Abstract

The mitochondrial outer membrane enzyme kynurenine 3-hydroxylase (K3H) is an NADPH-dependent flavin mono-oxygenase involved in the tryptophan pathway, where it catalyzes the hydroxylation of kynurenine. K3H was transiently expressed in COS-1 cells as a glutathione S-transferase (GST) fusion protein, and the pure recombinant protein (rec-K3H) was obtained with a specific activity of about 2000 nmol.min-1.mg-1. Rec-K3H was shown to have an optimum pH at 7.5, to use NADPH more efficiently than NADH, and to contain one molecule of non-covalently bound FAD per molecule of enzyme. The mechanism of the rec-K3H-catalyzed reaction was investigated by overall initial-rate measurements, and a random mechanism in which combination of the enzyme with one substrate does not influence its affinity for the other is proposed. Further kinetic studies revealed that K3H activity was inhibited by both pyridoxal phosphate and Cl-, and that NADPH-catalyzed oxidation occurred even in the absence of kynurenine if 3-hydroxykynurenine was present, suggesting an uncoupling effect of 3-hydroxykynurenine with peroxide formation. This observation could be of clinical interest, as peroxide formation could explain the neurotoxicity of 3-hydroxykynurenine in vivo.

摘要

线粒体外膜酶犬尿氨酸3-羟化酶(K3H)是一种参与色氨酸途径的NADPH依赖性黄素单加氧酶,在该途径中它催化犬尿氨酸的羟基化反应。K3H在COS-1细胞中作为谷胱甘肽S-转移酶(GST)融合蛋白瞬时表达,并获得了比活性约为2000 nmol·min-1·mg-1的纯重组蛋白(rec-K3H)。结果表明,rec-K3H的最适pH为7.5,与NADH相比,它能更有效地利用NADPH,并且每分子酶含有一分子非共价结合的FAD。通过整体初速率测量研究了rec-K3H催化反应的机制,并提出了一种随机机制,即酶与一种底物的结合不会影响其对另一种底物的亲和力。进一步的动力学研究表明,K3H活性受到磷酸吡哆醛和Cl-的抑制,并且如果存在3-羟基犬尿氨酸,即使在没有犬尿氨酸的情况下也会发生NADPH催化的氧化反应,这表明3-羟基犬尿氨酸与过氧化物形成存在解偶联效应。这一观察结果可能具有临床意义,因为过氧化物的形成可以解释3-羟基犬尿氨酸在体内的神经毒性。

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