首页> 美国卫生研究院文献>Biochemical Journal >Contrasting effects of N5-substituted tetrahydrobiopterin derivatives on phenylalanine hydroxylase dihydropteridine reductase and nitric oxide synthase.
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Contrasting effects of N5-substituted tetrahydrobiopterin derivatives on phenylalanine hydroxylase dihydropteridine reductase and nitric oxide synthase.

机译:N5取代的四氢生物蝶呤衍生物对苯丙氨酸羟化酶二氢蝶呤还原酶和一氧化氮合酶的影响。

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摘要

Tetrahydrobiopterin [(6R)-5,6,7,8-tetrahydro-L-biopterin, H(4)biopterin] is one of several cofactors of nitric oxide synthases (EC 1.14.13.39). Here we compared the action of N(5)-substituted derivatives on recombinant rat neuronal nitric oxide synthase with their effects on dihydropteridine reductase (EC 1.6.99.7) and phenylalanine hydroxylase (EC 1.14.16.1),the well-studied classical H(4)biopterin-dependent reactions. H(4)biopterin substituted at N(5) with methyl, hydroxymethyl, formyl and acetyl groups were used. Substitution at N(5) occurs at a position critical to the redox cycle of the cofactor in phenylalanine hydroxylase/dihydropteridine reductase. We also included N(2)'-methyl H(4)biopterin, a derivative substituted at a position not directly involved in redox cycling, as a control. As compared with N(5)-methyl H(4)biopterin, N(5)-formyl H(4)biopterin bound with twice the capacity but stimulated nitric oxide synthase to a lesser extent. Depending on the substituent used, N(5)-substituted derivatives were redox-active: N(5)-methyl- and N(5)-hydroxyl methyl H(4)biopterin, but not N(5)-formyl- and N(5)-acetyl H(4)biopterin, reduced 2,6-dichlorophenol indophenol. N(5)-Substituted H(4)biopterin derivatives were not oxidized to products serving as substrates for dihydropteridine reductase and,depending on the substituent, were competitive inhibitors of phenylalanine hydroxylase: N(5)-methyl- and N(5)-hydroxymethyl H(4)biopterin inhibited phenylalanine hydroxylase, whereas N(5)-formyl- and N(5)-acetyl H(4)biopterin had no effect. Our data demonstrate differences in the mechanism of stimulation of phenylalanine hydroxylase and nitric oxide synthase by H(4)biopterin. They are compatible with a novel, non-classical, redox-active contribution of H(4)biopterin to the catalysis of the nitric oxide synthase reaction.
机译:四氢生物蝶呤[(6R)-5,6,7,8-四氢-L-生物蝶呤,H(4)生物蝶呤]是一氧化氮合酶的几个辅助因子之一(EC 1.14.13.39)。在这里,我们比较了N(5)取代的衍生物对重组大鼠神经元一氧化氮合酶的作用及其对二氢蝶呤还原酶(EC 1.6.99.7)和苯丙氨酸羟化酶(EC 1.14.16.1),经典H(4)的作用。生物蝶呤依赖性反应。使用在N(5)处被甲基,羟甲基,甲酰基和乙酰基取代的H(4)biopterin。 N(5)处的取代发生在苯丙氨酸羟化酶/二氢蝶呤还原酶中对辅因子的氧化还原循环至关重要的位置。我们还包括N(2)'-甲基H(4)biopterin,在不直接参与氧化还原循环的位置取代的衍生物作为对照。与N(5)-甲基H(4)biopterin,N(5)-甲酰基H(4)biopterin结合两倍的能力,但在较小程度上刺激了一氧化氮合酶。根据所使用的取代基,N(5)-取代的衍生物具有氧化还原活性:N(5)-甲基和N(5)-羟基甲基H(4)生物蝶呤,但不是N(5)-甲酰基和N (5)-乙酰H(4)生物蝶呤,还原2,6-二氯苯酚吲哚酚。 N(5)取代的H(4)生物蝶呤衍生物没有被氧化成用作二氢蝶呤还原酶底物的产物,并且取决于取代基,它们是苯丙氨酸羟化酶的竞争性抑制剂:N(5)-甲基和N(5)-羟甲基H(4)biopterin抑制苯丙氨酸羟化酶,而N(5)-甲酰基-和N(5)-乙酰基H(4)biopterin没有作用。我们的数据证明了H(4)biopterin刺激苯丙氨酸羟化酶和一氧化氮合酶机制的差异。它们与H(4)生物蝶呤对一氧化氮合酶反应的催化作用的新颖,非经典,氧化还原活性的贡献是兼容的。

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