Hochkoeppler A, Zannoni D, Ciurli S, Meyer T E, Cusanovich M A, Tollin G
Department of Biology, University of Bologna, Italy.
Proc Natl Acad Sci U S A. 1996 Jul 9;93(14):6998-7002. doi: 10.1073/pnas.93.14.6998.
The kinetics of photo-induced electrontransfer from high-potential iron-sulfur protein (HiPIP) to the photosynthetic reaction center (RC) of the purple phototroph Rhodoferarfermentans were studied. The rapid photooxidation of heme c-556 belonging to RC is followed, in the presence of HiPIP, by a slower reduction having a second-order rate constant of 4.8 x 10(7) M(-1) x s(-1). The limiting value of kobs at high HiPIP concentration is 95 s(-1). The amplitude of this slow process decreases with increasing HiPIP concentration. The amplitude of a faster phase, observed at 556 and 425 nm and involving heme c-556 reduction, increases proportionately. The rate constant of this fast phase, determined at 425 and 556 nm, is approximately 3 x 10(5) s(-1). This value is not dependent on HiPIP concentration, indicating that it is related to a first-order process. These observations are interpreted as evidence for the formation of a HiPIP-RC complex prior to the excitation flash, having a dissociation constant of -2.5 microM. The fast phase is absent at high ionic strength, indicating that the complex involves mainly electrostatic interactions. The ionic strength dependence of kobs for the slow phase yields a second-order rate constant at infinite ionic strength of 5.4 x 10(6) M(-1) x s(-1) and an electrostatic interaction energy of -2.1 kcal/mol (1 cal = 4.184 J). We conclude that Rhodoferar fermentans HiPIP is a very effective electron donor to the photosynthetic RC.
研究了光诱导电子从高电位铁硫蛋白(HiPIP)转移至紫色光合细菌费氏红杆菌(Rhodoferar fermentans)光合反应中心(RC)的动力学。在HiPIP存在的情况下,属于RC的血红素c-556快速光氧化之后,紧接着是一个较慢的还原过程,其二级速率常数为4.8×10⁷ M⁻¹·s⁻¹。在高HiPIP浓度下,观测到的速率常数kobs的极限值为95 s⁻¹。这个缓慢过程的幅度随HiPIP浓度增加而减小。在556和425 nm处观察到的、涉及血红素c-556还原的较快相的幅度则成比例增加。在425和556 nm处测定的这个快速相的速率常数约为3×10⁵ s⁻¹。该值不依赖于HiPIP浓度,表明它与一级过程有关。这些观测结果被解释为在激发闪光之前形成了HiPIP-RC复合物的证据,其解离常数约为2.5 μM。在高离子强度下不存在快速相,表明该复合物主要涉及静电相互作用。慢相的kobs对离子强度的依赖性得出无限离子强度下的二级速率常数为5.4×10⁶ M⁻¹·s⁻¹,静电相互作用能为 -2.1 kcal/mol(1 cal = 4.184 J)。我们得出结论,费氏红杆菌HiPIP是光合RC非常有效的电子供体。