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一氧化氮通过与血红素辅基相互作用来抑制神经元型一氧化氮合酶。四氢生物蝶呤在调节一氧化氮抑制作用中的作用。

Nitric oxide inhibits neuronal nitric oxide synthase by interacting with the heme prosthetic group. Role of tetrahydrobiopterin in modulating the inhibitory action of nitric oxide.

作者信息

Griscavage J M, Fukuto J M, Komori Y, Ignarro L J

机构信息

Department of Molecular Pharmacology, UCLA School of Medicine 90024.

出版信息

J Biol Chem. 1994 Aug 26;269(34):21644-9.

PMID:7520440
Abstract

The objective of this study was to elucidate the mechanism by which nitric oxide (NO) inhibits NO synthase. Previous studies revealed that NO inhibits unpurified preparations of NO synthase. In the present study, the mechanism by which NO inhibits purified neuronal NO synthase from rat cerebellum was examined. The rate of L-citrulline formation from L-arginine was non-linear despite the presence of excess substrate and cofactors and was further inhibited by 30% by 200 units/ml superoxide dismutase. In contrast, 30 microM oxyhemoglobin increased NO synthase activity by 2-fold and made the reaction rate linear. These observations were consistent with the hypothesis that enzymatically generated NO inhibits NO synthase activity. Exogenous NO (0.1-10 microM) (but not NO2, nitrite, or nitrate) also inhibited NO synthase, and enzyme inhibition was not competitive with L-arginine. NO synthase inhibition by NO and other heme ligands supports the view that heme is involved in the catalytic activity of NO synthase. Oxyhemoglobin prevented but could not reverse enzyme inhibition by NO. NO synthase inhibition by NO was markedly diminished and reversed, however, by tetrahydrobiopterin (50 microM) or a tetrahydrobiopterin-regenerating system, and the latter made the reaction rate linear. In contrast, NO synthase inhibition by NO was markedly enhanced by heme oxidants (10 microM methylene blue; 3 microM ferricyanide), and these oxidants directly inhibited NO synthase activity. These observations suggest that NO interacts with enzyme-bound ferric heme to inhibit NO synthase activity. In support of this view, NO inhibited enzyme activity in the absence of turnover, when the heme iron is in the ferric state, and this inhibition was reversed by tetrahydrobiopterin. Therefore, the oxidation state of heme iron appears to be one important determinant for the inhibitory action of NO, and tetrahydrobiopterin may increase NO synthase activity by diminishing the inhibitory action of NO.

摘要

本研究的目的是阐明一氧化氮(NO)抑制一氧化氮合酶的机制。先前的研究表明,NO可抑制未纯化的一氧化氮合酶制剂。在本研究中,对NO抑制大鼠小脑纯化的神经元型一氧化氮合酶的机制进行了研究。尽管存在过量的底物和辅因子,但从L-精氨酸生成L-瓜氨酸的速率是非线性的,并且200单位/毫升的超氧化物歧化酶可使其进一步抑制30%。相比之下,30微摩尔的氧合血红蛋白可使一氧化氮合酶活性增加2倍,并使反应速率呈线性。这些观察结果与酶促产生的NO抑制一氧化氮合酶活性的假设一致。外源性NO(0.1 - 10微摩尔)(但不是NO2、亚硝酸盐或硝酸盐)也抑制一氧化氮合酶,并且酶抑制作用与L-精氨酸无竞争性。NO和其他血红素配体对一氧化氮合酶的抑制作用支持了血红素参与一氧化氮合酶催化活性的观点。氧合血红蛋白可防止但不能逆转NO对酶的抑制作用。然而,四氢生物蝶呤(50微摩尔)或四氢生物蝶呤再生系统可使NO对一氧化氮合酶的抑制作用明显减弱并逆转,并且后者使反应速率呈线性。相比之下,血红素氧化剂(10微摩尔亚甲蓝;3微摩尔铁氰化物)可明显增强NO对一氧化氮合酶的抑制作用,并且这些氧化剂直接抑制一氧化氮合酶活性。这些观察结果表明,NO与酶结合的高铁血红素相互作用以抑制一氧化氮合酶活性。支持这一观点的是,当血红素铁处于高铁状态时,在没有周转的情况下NO抑制酶活性,并且这种抑制作用可被四氢生物蝶呤逆转。因此,血红素铁的氧化状态似乎是NO抑制作用的一个重要决定因素,并且四氢生物蝶呤可能通过减少NO的抑制作用来增加一氧化氮合酶活性。

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