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首页> 外文期刊>Journal of the American Chemical Society >Dinitrosyl Iron Complexes with Cysteine. Kinetics Studies of the Formation and Reactions of DNICs in Aqueous Solution
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Dinitrosyl Iron Complexes with Cysteine. Kinetics Studies of the Formation and Reactions of DNICs in Aqueous Solution

机译:半胱氨酸的二亚硝基铁络合物。 DNIC在水溶液中形成和反应的动力学研究

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摘要

Kinetics studies provide mechanistic insight regarding the formation of dinitrosyl iron complexes (DNICs) now viewed as playing important roles in the mammalian chemical biology of the ubiquitous bioregulator nitric oxide (NO). Reactions in deaerated aqueous solutions containing FeSO_4, cysteine (CysSH), and NO demonstrate that both the rates and the outcomes are markedly pH dependent. The dinuclear DNIC Fe_2(μ-CysS)_2(NO)_4, a Roussin's red salt ester (Cys-RSE), is formed at pH 5.0 as well as at lower concentrations of cysteine in neutral pH solutions. The mononuclear DNIC Fe(NO)_2(CysS)_2~- (Cys-DNIC) is produced from the same three components at pH 10.0 and at higher cysteine concentrations at neutral pH. The kinetics studies suggest that both Cys-RSE and Cys-DNIC are formed via a common intermediate Fe(NO)(CysS)_2~-. Cys-DNIC and Cys-RSE interconvert, and the rates of this process depend on the cysteine concentration and on the pH. Flash photolysis of the Cys-RSE formed from Fe(Ⅱ)/NO/cysteine mixtures in anaerobic pH 5.0 solution led to reversible NO dissociation and a rapid, second-order back reaction with a rate constant k_(NO) = 6.9 × 10~7 M~(-1) s~(-1). In contrast, photolysis of the mononuclear-DNIC species Cys-DNIC formed from Fe(Ⅱ)/ NO/cysteine mixtures in anaerobic pH 10.0 solution did not labilize NO but instead apparently led to release of the CysS~· radical. These studies illustrate the complicated reaction dynamics interconnecting the DNIC species and offer a mechanistic model for the key steps leading to these non-heme iron nitrosyl complexes.
机译:动力学研究提供了有关二亚硝基铁配合物(DNIC)形成的机理的见解,而现在人们普遍认为该化合物在普遍存在的生物调节剂一氧化氮(NO)的哺乳动物化学生物学中起着重要作用。在含有FeSO_4,半胱氨酸(CysSH)和NO的脱气水溶液中的反应表明,速率和结果均明显取决于pH。双核DNIC Fe_2(μ-CysS)_2(NO)_4是鲁辛红盐酯(Cys-RSE),在pH 5.0以及较低浓度的半胱氨酸在中性pH溶液中形成。单核DNIC Fe(NO)_2(CysS)_2〜-(Cys-DNIC)由相同的三种组分在pH 10.0下产生,在中性pH下半胱氨酸浓度较高。动力学研究表明,Cys-RSE和Cys-DNIC都是通过共同的中间体Fe(NO)(CysS)_2〜-形成的。 Cys-DNIC和Cys-RSE相互转换,并且该过程的速率取决于半胱氨酸的浓度和pH。 Fe(Ⅱ)/ NO /半胱氨酸混合物在厌氧pH 5.0溶液中形成的Cys-RSE的快速光解导致可逆的NO分解和快速的二阶逆反应,速率常数k_(NO)= 6.9×10〜 7 M〜(-1)s〜(-1)。相反,由Fe(Ⅱ)/ NO /半胱氨酸混合物在厌氧pH 10.0溶液中形成的单核DNIC物种Cys-DNIC的光解作用并不能使NO稳定,反而显然导致了CySS〜·自由基的释放。这些研究说明了互连DNIC物种的复杂反应动力学,并为导致这些非血红素亚硝酰基复合物的关键步骤提供了机理模型。

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  • 来源
    《Journal of the American Chemical Society 》 |2015年第1期| 328-336| 共9页
  • 作者单位

    Department of Chemistry and Biochemistry, University of California, Santa Barbara, Santa Barbara, California 93106-9510, United States,Departamento de Quimica Geral e Inorganica, Instituto de Quimica de Araraquara, UNESP - Universidade Estadual Paulista, Araraquara, Sao Paulo 14801-970, Brazil;

    Department of Chemistry and Biochemistry, University of California, Santa Barbara, Santa Barbara, California 93106-9510, United States,Department of Chemistry and Environmental Sciences, Lake Superior State University, Sault Sainte Marie, Michigan 49783, United States;

    Department of Chemistry and Biochemistry, University of California, Santa Barbara, Santa Barbara, California 93106-9510, United States,Department of Chemistry, Renmin University of China, 59 ZhongGuanCun St., Beijing, 100872, China;

    Department of Chemistry and Biochemistry, University of California, Santa Barbara, Santa Barbara, California 93106-9510, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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