Wendoloski J J, Matthew J B, Weber P C, Salemme F R
Central Research and Development Department, E. I. du Pont de Nemours and Company, Wilmington, DE 19898.
Science. 1987 Nov 6;238(4828):794-7. doi: 10.1126/science.2823387.
Cytochrome c and cytochrome b5 form an electrostatically associated electron transfer complex. Computer models of this and related complexes that were generated by docking the x-ray structures of the individual proteins have provided insight into the specificity and mechanism of electron transfer reactions. Previous static modeling studies were extended by molecular dynamics simulations of a cytochrome c-cytochrome b5 intermolecular complex. The simulations indicate that electrostatic interactions at the molecular interface results in a flexible association complex that samples alternative interheme geometries and molecular conformations. Many of these transient geometries appear to be more favorable for electron transfer than those formed in the initial model complex. Of particular interest is a conformational change that occurred in phenylalanine 82 of cytochrome c that allowed the phenyl side chain to bridge the two cytochrome heme groups.
细胞色素c和细胞色素b5形成一种静电关联的电子转移复合物。通过对接单个蛋白质的X射线结构生成的该复合物及相关复合物的计算机模型,为电子转移反应的特异性和机制提供了深入了解。先前的静态建模研究通过细胞色素c - 细胞色素b5分子间复合物的分子动力学模拟得到了扩展。模拟表明,分子界面处的静电相互作用导致形成一种灵活的缔合复合物,该复合物呈现出不同的血红素间几何结构和分子构象。其中许多瞬态几何结构似乎比初始模型复合物中形成的结构更有利于电子转移。特别值得关注的是细胞色素c的苯丙氨酸82发生的构象变化,该变化使苯丙氨酸侧链能够桥接两个细胞色素血红素基团。