Vascular Biology Center, Medical College of Georgia, Augusta, 30912, USA.
DNA Cell Biol. 2010 Mar;29(3):149-60. doi: 10.1089/dna.2009.0858.
Endothelial nitric oxide synthase (eNOS) is inhibited by hydrogen peroxide (H(2)O(2)), but the mechanism has not been determined. Thus, the purpose of this study was to delineate the mechanism by which H(2)O(2) inhibits eNOS activity. Using mass spectroscopy, we found that the tetrathiolate cysteine residues 94 and 99 were susceptible to oxidation by H(2)O(2). Molecular modeling predicted that these cysteic acid modifications would disrupt the van der Waals interactions and the hydrogen bonding network mediated by the tetrathiolate cysteines 94 and 99 resulting in changes in quaternary structure, zinc release, and dimer collapse. Using recombinant human eNOS (heNOS) to test the predictions of the molecular modeling we found that H(2)O(2) caused disruption of the heNOS dimer and this was accompanied by zinc release and decreased NO generation. We also found that H(2)O(2) increased the oxidation of tetrahydrobiopterin (BH(4)) to dihydrobiopterin (BH(2)), whereas preincubation of heNOS with excess BH(4) prevented the destruction of zinc tetrathiolate and dimer collapse and preserved activity. Interestingly, we found that the dimmer-stabilizing effect of BH(4) is due to its ability to act as a catalase mimetic. Further, we confirmed that, in ovine aortic endothelial cells, H(2)O(2) could also induce dimer collapse and that increasing cellular BH(4) levels could maintain eNOS in its dimeric form and NO signaling when cells were challenged with H(2)O(2). This study links the inhibitory action of H(2)O(2) on heNOS through the destruction of zinc tetrathiolate metal-binding site and dimer collapse both in vitro and in vivo.
内皮型一氧化氮合酶(eNOS)可被过氧化氢(H₂O₂)抑制,但具体机制尚未确定。因此,本研究旨在阐明 H₂O₂抑制 eNOS 活性的机制。我们通过质谱分析发现,四硫醇半胱氨酸残基 94 和 99 易被 H₂O₂氧化。分子建模预测,这些半胱氨酸磺酸修饰会破坏四硫醇半胱氨酸 94 和 99 介导的范德华相互作用和氢键网络,导致四级结构改变、锌释放和二聚体塌陷。使用重组人内皮型一氧化氮合酶(heNOS)来验证分子建模的预测,我们发现 H₂O₂导致 heNOS 二聚体的破坏,同时伴随着锌的释放和 NO 生成减少。我们还发现 H₂O₂增加了四氢生物蝶呤(BH₄)向二氢生物蝶呤(BH₂)的氧化,而 heNOS 与过量 BH₄ 预孵育可防止锌四硫醇的破坏和二聚体塌陷,并保持活性。有趣的是,我们发现 BH₄ 的二聚体稳定作用是由于其作为过氧化氢酶模拟物的能力。此外,我们证实,在绵羊主动脉内皮细胞中,H₂O₂也可诱导二聚体塌陷,并且增加细胞内 BH₄ 水平可以在细胞受到 H₂O₂挑战时维持 eNOS 的二聚体形式和 NO 信号。本研究将 H₂O₂通过破坏锌四硫醇金属结合位点和二聚体塌陷对 heNOS 的抑制作用在体外和体内联系起来。