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细胞色素bc1复合物中工程化亚基间二硫键的形成破坏了该复合物中的电子传递活性。

Formation of engineered intersubunit disulfide bond in cytochrome bc1 complex disrupts electron transfer activity in the complex.

作者信息

Ma He-Wen, Yang Shaoqing, Yu Linda, Yu Chang-An

机构信息

Department of Biochemistry and Molecular Biology, Oklahoma State University, Stillwater, OK 74078, USA.

出版信息

Biochim Biophys Acta. 2008 Mar;1777(3):317-26. doi: 10.1016/j.bbabio.2008.01.005. Epub 2008 Jan 17.

Abstract

Protein domain movement of the Rieske iron-sulfur protein has been speculated to play an essential role in the bifurcated oxidation of ubiquinol catalyzed by the cytochrome bc1 complex. To better understand the electron transfer mechanism of the bifurcated ubiquinol oxidation at Qp site, we fixed the head domain of ISP at the cyt c1 position by creating an intersubunit disulfide bond between two genetically engineered cysteine residues: one at position 141 of ISP and the other at position 180 of the cyt c1 [S141C(ISP)/G180C(cyt c1)]. The formation of a disulfide bond between ISP and cyt c1 in this mutant complex is confirmed by SDS-PAGE and Western blot. In this mutant complex, the disulfide bond formation is concurrent with the loss of the electron transfer activity of the complex. When the disulfide bond is released by treatment with beta-mercaptoethanol, the activity is restored. These results further support the hypothesis that the mobility of the head domain of ISP is functionally important in the cytochrome bc1 complex. Formation of the disulfide bond between ISP and cyt c1 shortens the distance between the [2Fe-2S] cluster and heme c1, hence the rate of intersubunit electron transfer between these two redox prosthetic groups induced by pH change is increased. The intersubunit disulfide bond formation also decreases the rate of stigmatellin induced reduction of ISP in the fully oxidized complex, suggesting that an endogenous electron donor comes from the vicinity of the b position in the cytochrome b.

摘要

人们推测, Rieske铁硫蛋白的蛋白质结构域运动在细胞色素bc1复合物催化的泛醇分叉氧化中起关键作用。为了更好地理解Qp位点上泛醇分叉氧化的电子转移机制,我们通过在两个基因工程化的半胱氨酸残基之间形成亚基间二硫键,将铁硫蛋白(ISP)的头部结构域固定在细胞色素c1的位置:一个位于ISP的141位,另一个位于细胞色素c1的180位[S141C(ISP)/G180C(细胞色素c1)]。通过SDS-PAGE和蛋白质免疫印迹法证实了该突变复合物中ISP和细胞色素c1之间二硫键的形成。在这个突变复合物中,二硫键的形成与复合物电子转移活性的丧失同时发生。当用β-巯基乙醇处理释放二硫键时,活性得以恢复。这些结果进一步支持了以下假设:在细胞色素bc1复合物中,ISP头部结构域的移动性在功能上很重要。ISP和细胞色素c1之间二硫键的形成缩短了[2Fe-2S]簇与血红素c1之间的距离,因此由pH变化诱导的这两个氧化还原辅基之间的亚基间电子转移速率增加。亚基间二硫键的形成也降低了在完全氧化的复合物中,鱼藤酮诱导的ISP还原速率,这表明内源性电子供体来自细胞色素b中b位置附近。

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