首页> 美国卫生研究院文献>Biochemical Journal >Stopped-flow kinetic studies of electron transfer in the reductase domain of neuronal nitric oxide synthase: re-evaluation of the kinetic mechanism reveals new enzyme intermediates and variation with cytochrome P450 reductase.
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Stopped-flow kinetic studies of electron transfer in the reductase domain of neuronal nitric oxide synthase: re-evaluation of the kinetic mechanism reveals new enzyme intermediates and variation with cytochrome P450 reductase.

机译:在神经元一氧化氮合酶还原酶域中电子转移的停流动力学研究:动力学机理的重新评估揭示了新的酶中间体和细胞色素P450还原酶的变化。

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摘要

The reduction by NADPH of the FAD and FMN redox centres in the isolated flavin reductase domain of calmodulin-bound rat neuronal nitric oxide synthase (nNOS) has been studied by anaerobic stopped-flow spectroscopy using absorption and fluorescence detection. We show by global analysis of time-dependent photodiode array spectra, single wavelength absorption and NADPH fluorescence studies, that at least four resolvable steps are observed in stopped-flow studies with NADPH and that flavin reduction is reversible. The first reductive step represents the rapid formation of an equilibrium between an NADPH-enzyme charge-transfer species and two-electron-reduced enzyme bound to NADP(+). The second and third steps represent further reduction of the enzyme flavins and NADP(+) release. The fourth step is attributed to the slow accumulation of an enzyme species that is inferred not to be relevant catalytically in steady-state reactions. Stopped-flow flavin fluorescence studies indicate the presence of slow kinetic phases, the timescales of which correspond to the slow phase observed in absorption and NADPH fluorescence transients. By analogy with stopped-flow studies of cytochrome P450 reductase, we attribute these slow fluorescence and absorption changes to enzyme disproportionation and/or conformational change. Unlike for the functionally related cytochrome P450 reductase, transfer of the first hydride equivalent from NADPH to nNOS reductase does not generate the flavin di-semiquinoid state. This indicates that internal electron transfer is relatively slow and is probably gated by NADP(+) release. Release of calmodulin from the nNOS reductase does not affect the kinetics of inter-flavin electron transfer under stopped-flow conditions, although the observed rate of formation of the equilibrium between the NADPH-oxidized enzyme charge-transfer species and two-electron-reduced enzyme bound to NADP(+) is modestly slower in calmodulin-depleted enzyme. Our studies indicate the need for significant re-interpretation of published kinetic data for electron transfer in the reductase domain of neuronal nitric oxide synthase.
机译:通过厌氧停止流光谱法使用吸收和荧光检测研究了钙调蛋白结合的大鼠神经元一氧化氮合酶(nNOS)的分离的黄素还原酶结构域中的FAD和FMN氧化还原中心的NADPH还原。我们通过对时间相关光电二极管阵列光谱,单波长吸收和NADPH荧光研究的整体分析表明,在使用NADPH的停流研究中观察到至少四个可分辨的步骤,并且黄素的减少是可逆的。第一个还原步骤代表NADPH酶电荷转移物质和与NADP(+)结合的双电子还原酶之间快速形成平衡。第二步和第三步代表酶黄素和NADP(+)释放的进一步减少。第四步归因于酶种类的缓慢积累,这被认为与稳态反应中的催化作用无关。停止流黄素荧光研究表明存在慢动力学相,其时标对应于在吸收和NADPH荧光瞬变中观察到的慢相。通过类似于细胞色素P450还原酶的停流研究,我们将这些缓慢的荧光和吸收变化归因于酶歧化和/或构象变化。与功能相关的细胞色素P450还原酶不同,将第一氢化物当量从NADPH转移到nNOS还原酶不会产生黄素二半醌类状态。这表明内部电子传递相对较慢,并且可能受到NADP(+)释放的控制。尽管观察到NADPH氧化酶电荷转移物质和两电子还原酶之间形成平衡的速率,但在停流条件下从nNOS还原酶释放钙调蛋白并不影响黄素间电子转移的动力学。绑定到NADP(+)在钙调蛋白耗尽的酶中适度缓慢。我们的研究表明,需要对神经元一氧化氮合酶还原酶域中电子转移的已公开动力学数据进行大量重新解释。

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