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色氨酸 447 在人内皮型一氧化氮合酶(eNOS)酶偶联中的关键作用:对四氢生物蝶呤依赖性催化和 eNOS 二聚化的影响。

A pivotal role for tryptophan 447 in enzymatic coupling of human endothelial nitric oxide synthase (eNOS): effects on tetrahydrobiopterin-dependent catalysis and eNOS dimerization.

机构信息

From the British Heart Foundation Centre of Research Excellence, Division of Cardiovascular Medicine, University of Oxford, John Radcliffe Hospital, Oxford OX3 9DU, United Kingdom.

出版信息

J Biol Chem. 2013 Oct 11;288(41):29836-45. doi: 10.1074/jbc.M113.493023. Epub 2013 Aug 21.

Abstract

Tetrahydrobiopterin (BH4) is a required cofactor for the synthesis of NO by NOS. Bioavailability of BH4 is a critical factor in regulating the balance between NO and superoxide production by endothelial NOS (eNOS coupling). Crystal structures of the mouse inducible NOS oxygenase domain reveal a homologous BH4-binding site located in the dimer interface and a conserved tryptophan residue that engages in hydrogen bonding or aromatic stacking interactions with the BH4 ring. The role of this residue in eNOS coupling remains unexplored. We overexpressed human eNOS W447A and W447F mutants in novel cell lines with tetracycline-regulated expression of human GTP cyclohydrolase I, the rate-limiting enzyme in BH4 synthesis, to determine the importance of BH4 and Trp-447 in eNOS uncoupling. NO production was abolished in eNOS-W447A cells and diminished in cells expressing W447F, despite high BH4 levels. eNOS-derived superoxide production was significantly elevated in W447A and W447F versus wild-type eNOS, and this was sufficient to oxidize BH4 to 7,8-dihydrobiopterin. In uncoupled, BH4-deficient cells, the deleterious effects of W447A mutation were greatly exacerbated, resulting in further attenuation of NO and greatly increased superoxide production. eNOS dimerization was attenuated in W447A eNOS cells and further reduced in BH4-deficient cells, as demonstrated using a novel split Renilla luciferase biosensor. Reduction of cellular BH4 levels resulted in a switch from an eNOS dimer to an eNOS monomer. These data reveal a key role for Trp-447 in determining NO versus superoxide production by eNOS, by effects on BH4-dependent catalysis, and by modulating eNOS dimer formation.

摘要

四氢生物蝶呤 (BH4) 是 NOS 合成 NO 的必需辅助因子。BH4 的生物利用度是调节内皮型一氧化氮合酶 (eNOS 偶联) 产生的 NO 和超氧化物之间平衡的关键因素。小鼠诱导型 NOS 加氧酶结构域的晶体结构揭示了一个同源的 BH4 结合位点,位于二聚体界面,以及一个保守的色氨酸残基,与 BH4 环形成氢键或芳构堆积相互作用。该残基在 eNOS 偶联中的作用仍未得到探索。我们在新型细胞系中过表达了人类 eNOS W447A 和 W447F 突变体,该细胞系通过四环素调控人类 GTP 环化水解酶 I(BH4 合成的限速酶)的表达,以确定 BH4 和色氨酸 447 在 eNOS 解偶联中的重要性。尽管 BH4 水平很高,但 eNOS-W447A 细胞中的 NO 产生被消除,而 W447F 表达细胞中的 NO 产生减少。与野生型 eNOS 相比,W447A 和 W447F 中的 eNOS 衍生超氧化物产生显著增加,并且足以将 BH4 氧化为 7,8-二氢生物蝶呤。在缺乏 BH4 的解偶联细胞中,W447A 突变的有害影响大大加剧,导致 NO 进一步减弱和超氧化物产生大大增加。W447A eNOS 细胞中的 eNOS 二聚化减弱,在缺乏 BH4 的细胞中进一步降低,如使用新型分裂 Renilla 荧光素酶生物传感器所证明的那样。细胞内 BH4 水平的降低导致 eNOS 从二聚体向单体的转变。这些数据揭示了色氨酸 447 在决定 eNOS 产生 NO 与超氧化物方面的关键作用,其通过对 BH4 依赖性催化的影响以及调节 eNOS 二聚体形成来实现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b67/3795282/a8d1ed2a5f7d/zbc0451363650001.jpg

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