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本文引用的文献

1
The conserved Trp-Cys hydrogen bond dampens the "push effect" of the heme cysteinate proximal ligand during the first catalytic cycle of nitric oxide synthase.在一氧化氮合酶的第一个催化循环中,保守的色氨酸-半胱氨酸氢键抑制了血红素半胱氨酸近端配体的“推动效应”。
Biochemistry. 2011 Nov 22;50(46):10069-81. doi: 10.1021/bi200965e. Epub 2011 Nov 1.
2
Modulating heme redox potential through protein-induced porphyrin distortion.通过蛋白诱导的卟啉变形来调节血红素氧化还原电位。
J Am Chem Soc. 2010 Sep 22;132(37):12794-5. doi: 10.1021/ja106252b.
3
Nitric oxide synthase stabilizes the tetrahydrobiopterin cofactor radical by controlling its protonation state.一氧化氮合酶通过控制其四氢生物蝶呤辅因子自由基的质子化状态来稳定其自由基。
J Am Chem Soc. 2010 Aug 25;132(33):11812-23. doi: 10.1021/ja105372s.
4
Pterin-centered radical as a mechanistic probe of the second step of nitric oxide synthase.蝶呤中心自由基作为一氧化氮合酶第二步的机理探针。
J Am Chem Soc. 2010 Apr 14;132(14):5105-13. doi: 10.1021/ja909378n.
5
Role of arginine guanidinium moiety in nitric-oxide synthase mechanism of oxygen activation.胍基精氨酸部分在一氧化氮合酶氧活化机制中的作用。
J Biol Chem. 2010 Mar 5;285(10):7233-45. doi: 10.1074/jbc.M109.038240. Epub 2009 Nov 30.
6
EPR and ENDOR characterization of the reactive intermediates in the generation of NO by cryoreduced oxy-nitric oxide synthase from Geobacillus stearothermophilus.嗜热栖热放线菌低温还原氧合一氧化氮合酶产生一氧化氮过程中反应中间体的电子顺磁共振和电子核双共振表征
J Am Chem Soc. 2009 Oct 14;131(40):14493-507. doi: 10.1021/ja906133h.
7
The second step of the nitric oxide synthase reaction: evidence for ferric-peroxo as the active oxidant.一氧化氮合酶反应的第二步:以铁-过氧物种作为活性氧化剂的证据。
J Am Chem Soc. 2009 Jan 14;131(1):297-305. doi: 10.1021/ja807299t.
8
First half-reaction mechanism of nitric oxide synthase: the role of proton and oxygen coupled electron transfer in the reaction by quantum mechanics/molecular mechanics.一氧化氮合酶的首个半反应机制:量子力学/分子力学研究质子与氧耦合电子转移在反应中的作用
J Phys Chem B. 2009 Jan 8;113(1):336-46. doi: 10.1021/jp8073199.
9
Substrate-ligand interactions in Geobacillus stearothermophilus nitric oxide synthase.嗜热栖热放线菌一氧化氮合酶中的底物-配体相互作用。
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10
Stabilization and characterization of a heme-oxy reaction intermediate in inducible nitric-oxide synthase.诱导型一氧化氮合酶中血红素-氧反应中间体的稳定化与表征
J Biol Chem. 2008 Nov 28;283(48):33498-507. doi: 10.1074/jbc.M806122200. Epub 2008 Sep 24.

诱导型一氧化氮合酶的 W188H 突变稳定的催化中间产物。

Catalytic intermediates of inducible nitric-oxide synthase stabilized by the W188H mutation.

机构信息

Department of Physiology and Biophysics, Albert Einstein College of Medicine, Bronx, New York 10461, USA.

出版信息

J Biol Chem. 2013 Mar 1;288(9):6095-106. doi: 10.1074/jbc.M112.403238. Epub 2012 Dec 26.

DOI:10.1074/jbc.M112.403238
PMID:23269673
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3816742/
Abstract

Nitric-oxide synthase (NOS) catalyzes nitric oxide (NO) synthesis via a two-step process: L-arginine (L-Arg) → N-hydroxy-L-arginine → citrulline + NO. In the active site the heme is coordinated by a thiolate ligand, which accepts a H-bond from a nearby tryptophan residue, Trp-188. Mutation of Trp-188 to histidine in murine inducible NOS was shown to retard NO synthesis and allow for transient accumulation of a new intermediate with a Soret maximum at 420 nm during the L-Arg hydroxylation reaction (Tejero, J., Biswas, A., Wang, Z. Q., Page, R. C., Haque, M. M., Hemann, C., Zweier, J. L., Misra, S., and Stuehr, D. J. (2008) J. Biol. Chem. 283, 33498-33507). However, crystallographic data showed that the mutation did not perturb the overall structure of the enzyme. To understand how the proximal mutation affects the oxygen chemistry, we carried out biophysical studies of the W188H mutant. Our stopped-flow data showed that the 420-nm intermediate was not only populated during the L-Arg reaction but also during the N-hydroxy-L-arginine reaction. Spectroscopic data and structural analysis demonstrated that the 420-nm intermediate is a hydroxide-bound ferric heme species that is stabilized by an out-of-plane distortion of the heme macrocycle and a cation radical centered on the tetrahydrobiopterin cofactor. The current data add important new insights into the previously proposed catalytic mechanism of NOS (Li, D., Kabir, M., Stuehr, D. J., Rousseau, D. L., and Yeh, S. R. (2007) J. Am. Chem. Soc. 129, 6943-6951).

摘要

一氧化氮合酶(NOS)通过两步过程催化一氧化氮(NO)的合成:L-精氨酸(L-Arg)→N-羟基-L-精氨酸→瓜氨酸+NO。在活性部位,血红素被硫醇配体配位,该配体接受来自附近色氨酸残基 Trp-188 的氢键。已经表明,在诱导型鼠 NOS 中,将 Trp-188 突变为组氨酸会延迟 NO 的合成,并允许在 L-Arg 羟化反应过程中暂时积累一种具有 420nm 处 Soret 最大值的新中间产物(Tejero,J.,Biswas,A.,Wang,Z. Q.,Page,R. C.,Haque,M. M.,Hemann,C.,Zweier,J. L.,Misra,S.,和 Stuehr,D. J.(2008)J. Biol. Chem. 283,33498-33507)。然而,晶体学数据表明该突变并未扰乱酶的整体结构。为了了解近端突变如何影响氧化学,我们对 W188H 突变体进行了生物物理研究。我们的停流数据表明,420nm 中间产物不仅在 L-Arg 反应期间存在,而且在 N-羟基-L-精氨酸反应期间也存在。光谱数据和结构分析表明,420nm 中间产物是一种结合了氢氧化物的高铁血红素物种,该物种通过血红素大环的面外扭曲和四氢生物蝶呤辅因子上的自由基中心稳定。当前的数据为 NOS 的先前提出的催化机制提供了重要的新见解(Li,D.,Kabir,M.,Stuehr,D. J.,Rousseau,D. L.,和 Yeh,S. R.(2007)J. Am. Chem. Soc. 129,6943-6951)。