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对球形红杆菌R-26中Fe2+被Cu2+取代的光合反应中心进行电子顺磁共振研究。测定Cu2+与QA-之间的超精细相互作用、交换相互作用和偶极-偶极相互作用。

Electron paramagnetic resonance investigation of photosynthetic reaction centers from Rhodobacter sphaeroides R-26 in which Fe2+ was replaced by Cu2+. Determination of hyperfine interactions and exchange and dipole-dipole interactions between Cu2+ and QA-.

作者信息

Calvo R, Passeggi M C, Isaacson R A, Okamura M Y, Feher G

机构信息

INTEC (Consejo Nacional de Investigaciones Científicas y Técnicas and Universidad Nacional del Litoral), Santa Fe, Argentina.

出版信息

Biophys J. 1990 Jul;58(1):149-65. doi: 10.1016/S0006-3495(90)82361-4.

Abstract

We report electron paramagnetic resonance (EPR) experiments in frozen solutions of unreduced and reduced photosynthetic reaction centers (RCs) from Rhodobacter sphaeroides R-26 in which Fe2+ has been chemically replaced by the isotope 65Cu2+. Samples in which the primary quinone acceptor QA is unreduced (Cu2+QA:RCs) give a powder EPR spectrum typical for Cu2+ having axial symmetry, corresponding to a d(x2 - y2) ground state orbital, with g values g parallel = 2.314 +/- 0.001 and g perpendicular = 2.060 +/- 0.003. The spectrum shows a hyperfine structure for the nuclear spin of copper (65I = 3/2) with A parallel = (-167 +/- 1) x 10(-4) cm-1 and /A perpendicular/ = (16 +/- 2) x 10(-4) cm-1, and hyperfine couplings with three nitrogen ligands. This has been verified in samples containing the naturally occurring 14N isotope (l = 1), and in samples where the nitrogen ligands to copper were replaced by the isotope 15N (l = 1/2). We introduce a model for the electronic structure at the position of the metal ion which reflects the recently determined three-dimensional structure of the RCs of Rb. sphaeroides (Allen, J. P., G. Feher, T. O. Yeates, H. Komiya, and D. C. Rees. 1987. Proc. Natl. Acad. Sci. USA. 84:5730: Allen, J. P., G. Feher, T. O. Yeates, H. Komiya, and D. C. Rees. 1988. Proc. Natl. Acad. Sci. USA, 85:8487) as well as our EPR results. In this model the copper ion is octahedrally coordinated to three nitrogens from histidine residues and to one carboxylate oxygen from a glutamic acid, forming a distorted square in the plane of the d(x2 = y2) ground state orbital. It is also bound to a nitrogen of another histidine and to the other carboxylate oxygen of the same glutamic acid residue, in a direction approximately normal to this plane. The EPR spectrum changes drastically when the quinone acceptor QA is chemically reduced (Cu2+QA-:RCs); the change is due to the exchange and dipole-dipole interactions between the Cu2+ and QA- spins. A model spin Hamiltonian proposed for this exchange coupled cooper-quinone spin dimer accounts well for the observed spectra. From a comparison of the EPR spectra of the Cu2+QA:RC and CU2+QA-:RC complexes we obtain the values /J0/ = (0.30 +/- 0.02) K for the isotropic exchange coupling, and /d/ = (0.010 +/- 0.002) K for the projection of the dipole-dipole interaction tensor on the symmetry axis of the copper spin. From the EPR experiments only the relative signs of J0 and d can be deduced; it was determined that they have the same sign. The magnitude of the exchange coupling calculated for Cu2+QA-:RC is similar to that observed for the Fe2+QA-:RC complex (J0 = -0.43K). The exchange coupling is discussed in terms of the superexchange paths connecting the Cu2+ ion and the quinone radical using the structural data for the RCs of Rb. sphaeroides. From the value of the dipole-dipole interaction, d, we determined R approximately 8.4 A for the weighted distance between the metal ion and the quinone in reduced RCs, which is to be compared with 10 A obtained from x-ray analysis of unreduced RCs. This points to a shortening of the Cu2+ -QA- distance upon reduction of the quinone, as has been proposed by Allen et al. (1988).

摘要

我们报道了在球形红杆菌R-26未还原和还原的光合反应中心(RCs)的冷冻溶液中的电子顺磁共振(EPR)实验,其中Fe2+已被同位素65Cu2+化学取代。初级醌受体QA未还原的样品(Cu2+QA:RCs)给出了典型的具有轴向对称性的Cu2+粉末EPR谱,对应于d(x2 - y2)基态轨道,g值为g平行 = 2.314 ± 0.001和g垂直 = 2.060 ± 0.003。该谱显示了铜核自旋(65I = 3/2)的超精细结构,A平行 = (-167 ± 1) × 10(-4) cm-1,/A垂直/ = (16 ± 2) × 10(-4) cm-1,以及与三个氮配体的超精细耦合。这已在含有天然存在的14N同位素(I = 1)的样品以及铜的氮配体被同位素15N(I = 1/2)取代的样品中得到验证。我们引入了一个金属离子位置的电子结构模型,该模型反映了最近确定的球形红杆菌RCs的三维结构(Allen, J. P., G. Feher, T. O. Yeates, H. Komiya, and D. C. Rees. 1987. Proc. Natl. Acad. Sci. USA. 84:5730: Allen, J. P., G. Feher, T. O. Yeates, H. Komiya, and D. C. Rees. 1988. Proc. Natl. Acad. Sci. USA, 85:8487)以及我们的EPR结果。在这个模型中,铜离子与来自组氨酸残基的三个氮以及来自谷氨酸的一个羧酸根氧八面体配位,在d(x2 = y2)基态轨道平面内形成一个扭曲的正方形。它还与另一个组氨酸的氮以及同一谷氨酸残基的另一个羧酸根氧结合,方向大致垂直于该平面。当醌受体QA被化学还原时(Cu2+QA-:RCs),EPR谱会发生剧烈变化;这种变化是由于Cu2+和QA-自旋之间的交换和偶极 - 偶极相互作用。为这种交换耦合的铜 - 醌自旋二聚体提出的模型自旋哈密顿量很好地解释了观察到的谱。通过比较Cu2+QA:RC和CU2+QA-:RC配合物的EPR谱,我们得到各向同性交换耦合的值/J0/ = (0.30 ± 0.02) K,以及偶极 - 偶极相互作用张量在铜自旋对称轴上的投影/d/ = (0.010 ± 0.002) K。从EPR实验中只能推断出J0和d的相对符号;已确定它们具有相同的符号。为Cu2+QA-:RC计算的交换耦合大小与在Fe2+QA-:RC配合物中观察到的相似(J0 = -0.43K)。使用球形红杆菌RCs的结构数据,根据连接Cu2+离子和醌自由基的超交换路径讨论了交换耦合。从偶极 - 偶极相互作用的值d,我们确定还原的RCs中金属离子与醌之间的加权距离R约为8.4 Å,这与未还原的RCs的x射线分析得到的10 Å相比。这表明如Allen等人(1988)所提出的,醌还原时Cu2+ - QA-距离缩短。

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