首页> 外文OA文献 >Quantitative regulation of intracellular endothelial nitric-oxide synthase (eNOS) coupling by both tetrahydrobiopterin-eNOS stoichiometry and biopterin redox status: insights from cells with tet-regulated GTP cyclohydrolase I expression.
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Quantitative regulation of intracellular endothelial nitric-oxide synthase (eNOS) coupling by both tetrahydrobiopterin-eNOS stoichiometry and biopterin redox status: insights from cells with tet-regulated GTP cyclohydrolase I expression.

机译:四氢生物蝶呤-eNOS化学计量和生物蝶呤氧化还原状态对细胞内内皮一氧化氮合酶(eNOS)耦合的定量调节:由tet调节的GTP环水解酶I表达的细胞的见解。

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摘要

Tetrahydrobiopterin (BH4) is a critical determinant of endothelial nitric-oxide synthase (eNOS) activity. In the absence of BH4, eNOS becomes "uncoupled" and generates superoxide rather than NO. However, the stoichiometry of intracellular BH4/eNOS interactions is not well defined, and it is unclear whether intracellular BH4 deficiency alone is sufficient to induce eNOS uncoupling. To address these questions, we developed novel cell lines with tet-regulated expression of human GTP cyclohydrolase I (GTPCH), the rate-limiting enzyme in BH4 synthesis, to selectively induce intracellular BH4 deficiency by incubation with doxycycline. These cells were stably co-transfected to express a human eNOS-green fluorescent protein fusion protein, selecting clones expressing either low (GCH/eNOS-LOW) or high (GCH/eNOS-HIGH) levels. Doxycycline abolished GTPCH mRNA expression and GTPCH protein, leading to markedly diminished total biopterin levels and a decreased ratio of BH4 to oxidized biopterins in cells expressing eNOS. Intracellular BH4 deficiency induced superoxide generation from eNOS, as assessed by N-nitro-L-arginine methyl ester inhibitable 2-hydroxyethidium generation, and attenuated NO production. Quantitative analysis of cellular BH4 versus superoxide production between GCH/eNOS-LOW and GCH/eNOS-HIGH cells revealed a striking linear relationship between eNOS protein and cellular BH4 stoichiometry, with eNOS uncoupling at eNOS:BH4 molar ratio >1. Furthermore, increasing the intracellular BH2 concentration in the presence of a constant eNOS:BH4 ratio was sufficient to induce eNOS-dependent superoxide production. This specific, reductionist approach in a cell-based system reveals that eNOS:BH4 reaction stoichiometry together with the intracellular BH4:BH2 ratio, rather than absolute concentrations of BH4, are the key determinants of eNOS uncoupling, even in the absence of exogenous oxidative stress.
机译:四氢生物蝶呤(BH4)是内皮一氧化氮合酶(eNOS)活性的关键决定因素。在没有BH4的情况下,eNOS变得“未偶联”并生成超氧化物而不是NO。然而,细胞内BH4 / eNOS相互作用的化学计量还没有很好的定义,目前尚不清楚仅细胞内BH4缺乏是否足以引起eNOS解偶联。为了解决这些问题,我们开发了新型的细胞系,其具有人类GTP环水解酶I(GTPCH)的tet调节表达,BH4合成中的限速酶,通过与强力霉素孵育选择性诱导细胞内BH4缺乏症。将这些细胞稳定共转染以表达人eNOS-绿色荧光蛋白融合蛋白,选择表达低(GCH / eNOS-LOW)或高(GCH / eNOS-HIGH)水平的克隆。强力霉素废除了GTPCH mRNA表达和GTPCH蛋白,导致表达eNOS的细胞中总生物蝶呤水平显着降低,BH4与氧化的生物蝶呤的比率降低。通过N-硝基-L-精氨酸甲酯可抑制的2-羟基乙啶生成评估,细胞内BH4缺乏诱导了eNOS的超氧化物生成,并减弱了NO生成。定量分析GCH / eNOS-LOW和GCH / eNOS-HIGH细胞之间的细胞BH4与超氧化物的产量,发现eNOS蛋白与细胞BH4化学计量之间存在惊人的线性关系,其中eNOS在eNOS:BH4摩尔比> 1时解偶联。此外,在恒定eNOS:BH4比的存在下增加细胞内BH2浓度足以诱导eNOS依赖性超氧化物的产生。这种基于细胞的系统中的还原论方法表明,即使没有外源性氧化应激,eNOS:BH4反应的化学计量以及细胞内BH4:BH2的比例而不是BH4的绝对浓度也是eNOS解偶联的关键因素。 。

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