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球形红细菌反应中心在低温下由B-分支电子转移形成的半醌(D+*QB-*)的捕获构象状态。

Trapped conformational states of semiquinone (D+*QB-*) formed by B-branch electron transfer at low temperature in Rhodobacter sphaeroides reaction centers.

作者信息

Paddock M L, Flores M, Isaacson R, Chang C, Abresch E C, Selvaduray P, Okamura M Y

机构信息

Department of Physics, University of California, San Diego, La Jolla, California 92093, USA.

出版信息

Biochemistry. 2006 Nov 28;45(47):14032-42. doi: 10.1021/bi060854h.

Abstract

The reaction center (RC) from Rhodobacter sphaeroides captures light energy by electron transfer between quinones QA and QB, involving a conformational gating step. In this work, conformational states of D+QB- were trapped (80 K) and studied using EPR spectroscopy in native and mutant RCs that lack QA in which QB was reduced by the bacteriopheophytin along the B-branch. In mutant RCs frozen in the dark, a light induced EPR signal due to D+QB- formed in 30% of the sample with low quantum yield (0.2%-20%) and decayed in 6 s. A small signal with similar characteristics was also observed in native RCs. In contrast, the EPR signal due to D+QB- in mutant RCs illuminated while freezing formed in approximately 95% of the sample did not decay (tau >107 s) at 80 K (also observed in the native RC). In all samples, the observed g-values were the same (g = 2.0026), indicating that all active QB-*'s were located in a proximal conformation coupled with the nonheme Fe2+. We propose that before electron transfer at 80 K, the majority (approximately 70%) of QB, structurally located in the distal site, was not stably reducible, whereas the minority (approximately 30%) of active configurations was in the proximal site. The large difference in the lifetimes of the unrelaxed and relaxed D+QB- states is attributed to the relaxation of protein residues and internal water molecules that stabilize D+QB-. These results demonstrate energetically significant conformational changes involved in stabilizing the D+QB- state. The unrelaxed and relaxed states can be considered to be the initial and final states along the reaction coordinate for conformationally gated electron transfer.

摘要

球形红杆菌的反应中心(RC)通过醌QA和QB之间的电子转移捕获光能,这涉及一个构象门控步骤。在这项工作中,D+*QB-*的构象状态被捕获(80K),并使用电子顺磁共振光谱在天然和缺乏QA的突变RC中进行研究,其中QB沿着B分支被细菌叶绿素还原。在黑暗中冷冻的突变RC中,30%的样品中由于D+*QB-*形成了光诱导电子顺磁共振信号,量子产率低(0.2%-20%),并在6秒内衰减。在天然RC中也观察到了具有类似特征的小信号。相比之下,在冷冻时照射的突变RC中,约95%的样品中由于D+*QB-*产生的电子顺磁共振信号在80K时不衰减(τ>107秒)(在天然RC中也观察到)。在所有样品中,观察到的g值相同(g = 2.0026),表明所有活性QB-*都位于与非血红素Fe2+耦合的近端构象中。我们提出,在80K进行电子转移之前,结构上位于远端位点的大多数QB(约70%)不能稳定地被还原,而少数(约30%)的活性构型位于近端位点。未松弛和松弛的D+*QB-*状态寿命的巨大差异归因于稳定D+*QB-*的蛋白质残基和内部水分子的松弛。这些结果证明了在稳定D+*QB-*状态中涉及的能量上重要的构象变化。未松弛和松弛状态可被视为构象门控电子转移反应坐标上的初始和最终状态。

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