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血红素铁配位和蛋白质结构在一氧化氮与H93G肌红蛋白突变体的动力学及双分子复合重结合中的作用:对一氧化氮传感器的启示

Role of heme iron coordination and protein structure in the dynamics and geminate rebinding of nitric oxide to the H93G myoglobin mutant: implications for nitric oxide sensors.

作者信息

Negrerie Michel, Kruglik Sergei G, Lambry Jean-Christophe, Vos Marten H, Martin Jean-Louis, Franzen Stefan

机构信息

INSERM U696, Laboratoire d'Optique et Biosciences, Ecole Polytechnique, Palaiseau F91120, 91128 Palaiseau Cedex, France.

出版信息

J Biol Chem. 2006 Apr 14;281(15):10389-98. doi: 10.1074/jbc.M513375200. Epub 2006 Feb 13.

Abstract

The influence of the heme iron coordination on nitric oxide binding dynamics was investigated for the myoglobin mutant H93G (H93G-Mb) by picosecond absorption and resonance Raman time-resolved spectroscopies. In the H93G-Mb, the glycine replacing the proximal histidine does not interact with the heme iron so that exogenous substituents like imidazole may coordinate to the iron at the proximal position. Nitrosylation of H93G-Mb leads to either 6- or 5-coordinate species depending on the imidazole concentration. At high concentrations, (imidazole)-(NO)-6-coordinate heme is formed, and the photoinduced rebinding kinetics reveal two exponential picosecond phases ( approximately 10 and approximately 100 ps) similar to those of wild type myoglobin. At low concentrations, imidazole is displaced by the trans effect leading to a (NO)-5-coordinate heme, becoming 4-coordinate immediately after photolysis as revealed from the transient Raman spectrum. In this case, NO rebinding kinetics remain bi-exponential with no change in time constant of the fast component whose amplitude increases with respect to the 6-coordinate species. Bi-exponential NO geminate rebinding in 5-coordinate H93G-Mb is in contrast with the single-exponential process reported for nitrosylated soluble guanylate cyclase (Negrerie, M., Bouzhir, L., Martin, J. L., and Liebl, U. (2001) J. Biol. Chem. 276, 46815-46821). Thus, our data show that the iron coordination state or the heme iron out-of-plane motion are not at the origin of the bi-exponential kinetics, which depends upon the protein structure, and that the 4-coordinate state favors the fast phase of NO geminate rebinding. Consequently, the heme coordination state together with the energy barriers provided by the protein structure control the dynamics and affinity for NO-binding enzymes.

摘要

通过皮秒吸收光谱和共振拉曼时间分辨光谱,研究了肌红蛋白突变体H93G(H93G-Mb)中血红素铁配位对一氧化氮结合动力学的影响。在H93G-Mb中,取代近端组氨酸的甘氨酸不与血红素铁相互作用,因此像咪唑这样的外源取代基可能在近端位置与铁配位。H93G-Mb的亚硝化会根据咪唑浓度产生六配位或五配位物种。在高浓度下,会形成(咪唑)-(NO)-六配位血红素,光诱导的再结合动力学显示出两个皮秒级指数阶段(约10皮秒和约100皮秒),与野生型肌红蛋白相似。在低浓度下,咪唑因反位效应被取代,导致形成(NO)-五配位血红素,瞬态拉曼光谱显示光解后立即变为四配位。在这种情况下,NO再结合动力学仍为双指数形式,快速成分的时间常数不变,但其幅度相对于六配位物种增加。五配位H93G-Mb中双指数的NO双分子再结合与亚硝化可溶性鸟苷酸环化酶报道的单指数过程形成对比(Negrerie, M., Bouzhir, L., Martin, J. L., and Liebl, U. (2001) J. Biol. Chem. 276, 46815 - 46821)。因此,我们的数据表明,铁配位状态或血红素铁的平面外运动并非双指数动力学的起源,双指数动力学取决于蛋白质结构,且四配位状态有利于NO双分子再结合的快速阶段。因此,血红素配位状态与蛋白质结构提供的能量屏障共同控制了对NO结合酶的动力学和亲和力。

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