Meyer T E, Zhao Z G, Cusanovich M A, Tollin G
Department of Biochemistry, University of Arizona, Tucson 85721.
Biochemistry. 1993 May 4;32(17):4552-9. doi: 10.1021/bi00068a010.
Plastocyanin (PC) and its physiological reaction partner cytochrome (cyt) f form a complex which is electrostatically stabilized by interactions between complementary localized charges. We have measured the kinetics of intracomplex electron transfer between several reduced cytochromes and PC using laser flash photolysis. With spinach cyt f and spinach PC, we obtain first-order rate constants, kforward = 2780 s-1 and kreverse = 1050 s-1, for the reversible reaction and a complex dissociation constant of about 23 microM at an ionic strength (I) of 5 mM. The observed rate constant increases by a factor of 2 between I = 5 and 40 mM and then decreases monotonically at higher ionic strengths. This indicates that the complex is not completely dissociated until I = 150 mM and that the proteins within the electrostatically most stable complex are not optimally oriented for electron transfer. Similar results were obtained with turnip cyt f and spinach PC, although in this case intracomplex electron transfer is about 4 times as fast. Horse cyt c also forms an electrostatically stabilized complex with PC, and yields a limiting rate constant for intracomplex electron transfer (1750 s-1) and a dissociation constant (10 microM) comparable to those for spinach cyt f. The ionic strength dependence shows that the complex is more readily dissociated (complete at I = 25 mM) than is that of cyt f and that rearrangement is not required for optimal electron transfer. Addition of polylysine results in 10-fold inhibition of the rate of electron transfer. Pseudomonas cyt c-551 is an acidic cytochrome which does not form a complex with PC.(ABSTRACT TRUNCATED AT 250 WORDS)
质体蓝素(PC)及其生理反应伙伴细胞色素(cyt)f形成一个复合物,该复合物通过互补局部电荷之间的相互作用而静电稳定。我们使用激光闪光光解测量了几种还原型细胞色素与PC之间复合物内电子转移的动力学。对于菠菜细胞色素f和菠菜PC,我们得到了可逆反应的一级速率常数,正向速率常数kforward = 2780 s-1,逆向速率常数kreverse = 1050 s-1,在离子强度(I)为5 mM时,复合物解离常数约为23 μM。在I = 5至40 mM之间,观察到的速率常数增加了2倍,然后在更高的离子强度下单调下降。这表明直到I = 150 mM时复合物才完全解离,并且静电最稳定复合物中的蛋白质对于电子转移的取向并非最佳。用芜菁细胞色素f和菠菜PC也得到了类似的结果,尽管在这种情况下复合物内电子转移速度快约4倍。马细胞色素c也与PC形成静电稳定的复合物,并产生与菠菜细胞色素f相当的复合物内电子转移极限速率常数(1750 s-1)和解离常数(10 μM)。离子强度依赖性表明该复合物比细胞色素f的复合物更容易解离(在I = 25 mM时完全解离),并且最佳电子转移不需要重排。添加聚赖氨酸导致电子转移速率受到10倍的抑制。假单胞菌细胞色素c-551是一种酸性细胞色素,它不与PC形成复合物。(摘要截断于250字)