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细胞色素b562突变体中双甲硫氨酸与血红素铁的连接。1. 电子性质的光谱和电化学表征

Bis-methionine ligation to heme iron in mutants of cytochrome b562. 1. Spectroscopic and electrochemical characterization of the electronic properties.

作者信息

Barker P D, Nerou E P, Cheesman M R, Thomson A J, de Oliveira P, Hill H A

机构信息

Centre for Protein Engineering, MRC Centre, Cambridge, U.K.

出版信息

Biochemistry. 1996 Oct 22;35(42):13618-26. doi: 10.1021/bi961127x.

Abstract

We have generated mutants of cytochrome b562 in which the histidine ligand to the heme iron (His102) has been replaced by a methionine. The resulting proteins can have bis-methionine coordination to the heme iron, but the stability of this arrangement is dependent on oxidation state and solution pH. We have used optical, MCD, and EPR spectroscopies to study the nature of the heme coordination environment under a variety of conditions. Optical spectra of the reduced state of the single variant, H102M, are consistent with bis-methionine ligation. In its oxidized state, this protein is high-spin under all conditions studied, and the spectroscopic properties are consistent with only one of the methionine ligands being coordinated. We cannot identify what, if anything, provides the other axial ligand. A double variant, R98C/H102M (in which the heme is covalently attached to the protein through a c-type thioether linkage), is also bis-methionine coordinated in the ferrous state, but has significantly different properties in the oxidized state. With a pKa of 7.1 at 20 degrees C, the protein converts from a low-spin, 6-coordinate heme protein at low pH, to a high-spin species, similar to the high-spin species observed for the single variant. Our spectroscopic data prove that the low-spin species is bis-methionine coordinated. The reduction potential of this bis-methionine species has been measured using direct electrochemical techniques and is +440 mV at pH 4.8. The electrochemistry of these proteins is complicated by coupled coordination-state changes. Proof that the ferrous state is bis-methionine coordinated is provided by NMR results presented in the following paper.

摘要

我们已经构建了细胞色素b562的突变体,其中与血红素铁配位的组氨酸配体(His102)被甲硫氨酸取代。由此产生的蛋白质可能具有双甲硫氨酸与血红素铁的配位,但这种配位结构的稳定性取决于氧化态和溶液pH值。我们使用了光学、磁圆二色性(MCD)和电子顺磁共振(EPR)光谱技术来研究在各种条件下血红素配位环境的性质。单一变体H102M还原态的光谱与双甲硫氨酸配位一致。在氧化态下,该蛋白质在所有研究条件下均为高自旋,其光谱性质与只有一个甲硫氨酸配体参与配位一致。我们无法确定是什么(如果有的话)提供了另一个轴向配体。双变体R98C/H102M(其中血红素通过c型硫醚键与蛋白质共价连接)在亚铁状态下也是双甲硫氨酸配位,但在氧化态下具有显著不同的性质。在20℃时,该蛋白质的pKa为7.1,在低pH值下从低自旋、六配位的血红素蛋白质转变为高自旋物种,类似于单一变体中观察到的高自旋物种。我们的光谱数据证明低自旋物种是双甲硫氨酸配位的。使用直接电化学技术测量了这种双甲硫氨酸物种的还原电位,在pH 4.8时为+440 mV。这些蛋白质的电化学过程因配位状态的耦合变化而变得复杂。后续论文中给出的核磁共振结果证明了亚铁状态是双甲硫氨酸配位的。

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