Ikeda-Saito M, Dou Y, Yonetani T, Olson J S, Li T, Regan R, Gibson Q H
Department of Physiology and Biophysics, Case Western Reserve University, School of Medicine, Cleveland, Ohio 44106-4970.
J Biol Chem. 1993 Apr 5;268(10):6855-7.
There are at least two picosecond kinetic components in the rebinding of NO to native sperm whale myoglobin. Petrich et al. (Petrich, J. W., Lambry, J.-C., Kuczera, K., Karplus, M., Poyart, C., and Martin, J.-L. (1991) Biochemistry 30, 3975-3987) attribute the slowing of the reaction to a movement of the iron atom out of the plane of the heme following ligand dissociation. In contrast, Gibson et al. (Gibson, Q. H., Regan, R., Elber, R., Olson, J. S., and Carver, T. E. (1992) J. Biol. Chem. 267, 22022-22034) have explained multiphasic geminate reactions by diffusion of NO into the distal heme pocket as determined by its detailed structure. O2 and NO rebinding to iron and cobalt derivatives of native, V68F, and V68I sperm whale myoglobin has been examined. Each iron protein shows a biphasic time course of NO rebinding reactions with widely different rates and amplitudes. Although cobalt does not move out of the plane of the porphyrin on ligand removal, the reactions of the iron and cobalt derivatives of each protein were closely similar. The time course of O2 rebinding to cobalt was also similar to that of NO rebinding to iron. These results are consistent with a primary role for the structure of the distal pocket in determining diffusion of ligands away from the metal atom and as a result the time course of picosecond ligand rebinding.
一氧化氮(NO)与天然抹香鲸肌红蛋白的再结合过程中至少存在两个皮秒动力学成分。佩特里奇等人(佩特里奇,J. W.,兰布里,J.-C.,库采拉,K.,卡尔普斯,M.,波亚尔,C.,以及马丁,J.-L.(1991年)《生物化学》30卷,3975 - 3987页)将反应速率减慢归因于配体解离后铁原子移出血红素平面的运动。相比之下,吉布森等人(吉布森,Q. H.,里根,R.,埃尔伯,R.,奥尔森,J. S.,以及卡弗,T. E.(1992年)《生物化学杂志》267卷,22022 - 22034页)通过NO扩散到远端血红素口袋来解释多相双分子反应,这是由其详细结构决定的。已经研究了O₂和NO与天然、V68F和V68I抹香鲸肌红蛋白的铁和钴衍生物的再结合情况。每种铁蛋白的NO再结合反应都呈现出双相时间进程,速率和幅度差异很大。尽管钴在配体去除时不会移出卟啉平面,但每种蛋白质的铁和钴衍生物的反应却非常相似。O₂与钴的再结合时间进程也与NO与铁的再结合时间进程相似。这些结果与远端口袋结构在决定配体从金属原子扩散以及由此决定皮秒级配体再结合时间进程方面的主要作用是一致的。