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混合自旋铁细胞色素 c' 配体环境的电子顺磁共振(ENDOR)研究

ENDOR investigation of the liganding environment of mixed-spin ferric cytochrome c'.

作者信息

Usov Oleg M, Choi Peter S-T, Shapleigh James P, Scholes Charles P

机构信息

Department of Chemistry, Center for Biochemistry and Biophysics, University at Albany, SUNY, Albany, New York 12222, USA.

出版信息

J Am Chem Soc. 2005 Jul 6;127(26):9485-94. doi: 10.1021/ja043994s.

Abstract

The electronic structure of the 5-coordinate quantum-mechanically mixed-spin (sextet-quartet) heme center in cytochrome c' was investigated by electron nuclear double resonance (ENDOR), a technique not previously applied to this mixed-spin system. Cytochrome c' was obtained from overexpressing variants of Rhodobacter sphaeroides 2.4.3. ENDOR for this study was done at the g(//) = 2.00 extremum where single-crystal-like, well-resolved spectra prevail. The heme meso protons of cytochrome c' showed a contact interaction that implied spin delocalization arising from the heme (d(z)(2)) orbital enhanced by iron out-of-planarity. An exchangeable proton ENDOR feature appeared from the proximal His123 Ndelta hydrogen. This Ndelta hydrogen, which crystallographically has no hydrogen-bonding partner and thus belongs to a neutral imidazole, showed a larger hyperfine coupling than the corresponding hydrogen-bonded Ndelta proton from metmyoglobin. The unique residue Phe14 occludes binding of a sixth ligand in cytochrome c', and ENDOR from a proton of the functionally important Phe14 ring, approximately 3.3 A away from the heme iron, was detected. ENDOR of the nitrogen ligand hyperfine structure is a direct probe into the sigma-antibonding (d(z)(2)) and (d(x)(2)-d(y)(2)) orbitals whose energies alter the relative stability and admixture of sextet and quartet states and whose electronic details were thus elucidated. ENDOR frequencies showed for cytochrome c' larger hyperfine couplings to the histidine nitrogen and smaller hyperfine couplings to the heme nitrogens than for high-spin ferric hemes. Both of these findings followed from the mixed-spin ground state, which has less (d(x)(2)-d(y)(2)) character than have fully high-spin ferric heme systems.

摘要

通过电子核双共振(ENDOR)技术研究了细胞色素c'中五配位量子力学混合自旋(六重态 - 四重态)血红素中心的电子结构,该技术此前未应用于这种混合自旋体系。细胞色素c'是从球形红杆菌2.4.3的过表达变体中获得的。本研究的ENDOR实验在g(//)=2.00极值处进行,此处呈现出类似单晶的、分辨率良好的光谱。细胞色素c'的血红素中位质子显示出一种接触相互作用,这意味着由于铁的平面外性增强了血红素(d(z)(2))轨道而产生的自旋离域。从近端His123的Nδ氢出现了一个可交换质子ENDOR特征。该Nδ氢在晶体学上没有氢键伙伴,因此属于中性咪唑,它显示出比来自高铁肌红蛋白的相应氢键结合的Nδ质子更大的超精细耦合。独特的残基Phe14阻碍了细胞色素c'中第六个配体的结合,并且检测到了来自功能重要的Phe14环上一个质子的ENDOR信号,该质子距离血红素铁约3.3 Å。氮配体超精细结构的ENDOR是对σ反键(d(z)(2))和(d(x)(2)-d(y)(2))轨道的直接探测,其能量改变了六重态和四重态的相对稳定性和混合情况,从而阐明了其电子细节。ENDOR频率表明,与高自旋铁血红素相比,细胞色素c'对组氨酸氮的超精细耦合更大,对血红素氮的超精细耦合更小。这两个发现都源于混合自旋基态,其(d(x)(2)-d(y)(2))特征比完全高自旋铁血红素系统少。

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