Ferlez Bryan, Cowgill John, Dong Weibing, Gisriel Christopher, Lin Su, Flores Marco, Walters Karim, Cetnar Daniel, Redding Kevin E, Golbeck John H
Department of Biochemistry and Molecular Biology, The Pennsylvania State University , University Park, Pennsylvania 16802, United States.
School of Molecular Sciences, Arizona State University , Tempe, Arizona 85287, United States.
Biochemistry. 2016 Apr 26;55(16):2358-70. doi: 10.1021/acs.biochem.5b01320. Epub 2016 Apr 14.
The homodimeric type I reaction center in heliobacteria is arguably the simplest known pigment-protein complex capable of conducting (bacterio)chlorophyll-based conversion of light into chemical energy. Despite its structural simplicity, the thermodynamics of the electron transfer cofactors on the acceptor side have not been fully investigated. In this work, we measured the midpoint potential of the terminal 4Fe-4S cluster (FX) in reaction centers from Heliobacterium modesticaldum. The FX cluster was titrated chemically and monitored by (i) the decrease in the level of stable P800 photobleaching by optical spectroscopy, (ii) the loss of the light-induced g ≈ 2 radical from P800(+•) following a single-turnover flash, (iii) the increase in the low-field resonance at 140 mT attributed to the S = (3)/2 ground spin state of FX(-), and (iv) the loss of the spin-correlated P800(+) FX(-) radical pair following a single-turnover flash. These four techniques led to similar estimations of the midpoint potential for FX of -502 ± 3 mV (n = 0.99), -496 ± 2 mV (n = 0.99), -517 ± 10 mV (n = 0.65), and -501 ± 4 mV (n = 0.84), respectively, with a consensus value of -504 ± 10 mV (converging to n = 1). Under conditions in which FX is reduced, the long-lived (∼15 ms) P800(+) FX(-) state is replaced by a rapidly recombining (∼15 ns) P800(+)A0(-) state, as shown by ultrafast optical experiments. There was no evidence of the presence of a P800(+) A1(-) spin-correlated radical pair by electron paramagnetic resonance (EPR) under these conditions. The midpoint potentials of the two 4Fe-4S clusters in the low-molecular mass ferredoxins were found to be -480 ± 11 mV/-524 ± 13 mV for PshBI, -453 ± 6 mV/-527 ± 6 mV for PshBII, and -452 ± 5 mV/-533 ± 8 mV for HM1_2505 as determined by EPR spectroscopy. FX is therefore suitably poised to reduce one 4Fe-4S cluster in these mobile electron carriers. Using the measured midpoint potential of FX and a quasi-equilibrium model of charge recombination, the midpoint potential of A0 was estimated to be -854 mV at room temperature. The midpoint potentials of A0 and FX are therefore 150-200 mV less reducing than their respective counterparts in Photosystem I of cyanobacteria and plants. This places the redox potential of the FX cluster in heliobacteria approximately equipotential to the highest-potential iron-sulfur cluster (FA) in Photosystem I, consistent with its assignment as the terminal electron acceptor.
嗜盐菌中的同二聚体I型反应中心可以说是已知的最简单的色素-蛋白质复合体,能够进行基于(细菌)叶绿素的光化学能转化。尽管其结构简单,但受体侧电子传递辅因子的热力学尚未得到充分研究。在这项工作中,我们测量了适度嗜盐菌反应中心中末端4Fe-4S簇(FX)的中点电位。通过化学滴定FX簇,并通过以下方法进行监测:(i)用光谱法观察稳定的P800光漂白水平的降低;(ii)单周转闪光后P800(+•)光诱导的g≈2自由基的消失;(iii)归因于FX(-)的S=(3)/2基态自旋态的140 mT处低场共振的增加;(iv)单周转闪光后自旋相关的P800(+)FX(-)自由基对的消失。这四种技术分别得出FX中点电位的相似估计值为-502±3 mV(n = 0.99)、-496±2 mV(n = 0.99)、-517±10 mV(n = 0.65)和-501±4 mV(n = 0.84),共识值为-504±10 mV(收敛到n = 1)。超快光学实验表明,在FX被还原的条件下,长寿命(约15 ms)的P800(+)FX(-)态被快速重组(约15 ns)的P800(+)A0(-)态取代。在这些条件下,通过电子顺磁共振(EPR)没有发现P800(+)A1(-)自旋相关自由基对存在的证据。通过EPR光谱法测定,低分子量铁氧化还原蛋白中两个4Fe-4S簇的中点电位对于PshBI为-480±11 mV/-524±13 mV,对于PshBII为-453±6 mV/-527±6 mV,对于HM1_2505为-452±5 mV/-533±8 mV。因此,FX适合于还原这些可移动电子载体中的一个4Fe-4S簇。利用测量的FX中点电位和电荷复合的准平衡模型,估计室温下A0的中点电位为-854 mV。因此,A0和FX的中点电位比蓝细菌和植物光系统I中各自对应的电位低150 - 200 mV。这使得嗜盐菌中FX簇的氧化还原电位与光系统I中最高电位的铁硫簇(FA)大致等电位,与其作为末端电子受体的作用一致。