Ohnishi Tomoko, Ohnishi S Tsuyoshi, Shinzawa-Itoh Kyoko, Yoshikawa Shinya, Weber Ralph T
Department of Biochemistry and Biophysics, University of Pennsylvania, Philadelphia, PA 19104, USA.
Biochim Biophys Acta. 2012 Oct;1817(10):1803-9. doi: 10.1016/j.bbabio.2012.03.032. Epub 2012 Apr 5.
The success of Sazanov's group in determining the X-ray structure of the whole bacterial complex I is a great contribution to the progress of complex I research. In this mini-review of 35years' history of my laboratory and collaborators, we characterized the function of protein-associated semiquinone molecules in the proton-pumping mechanism in complex I (NADH-quinone oxidoreductase). We have constructed most of the frame work of our hypothesis, utilizing EPR techniques before the X-ray structures of complex I were reported by Sazanov's and Brandt's groups. One of the semiquinones (SQ(Nf)) is extremely sensitive to a proton motive force imposed on the energy-transducing membrane, while the other (SQ(Ns)) is insensitive. Their sensitivity to rotenone inhibition also differs. These differences were exploited using tightly coupled bovine heart submitochondrial particles with a high respiratory control ratio (>8). We determined the distance between SQ(Nf) and iron-sulfur cluster N2 on the basis of their direct spin-spin interaction. We are extending this line of work using reconstituted bovine heart complex I proteoliposomes which shows a respiratory control ratio >5. Two frontier research groups support our view point based on their mutagenesis studies. High frequency (33.9GHz; Q-band) EPR experiments appear to favor our two-semiquinone model. This article is part of a Special Issue entitled: 17th European Bioenergetics Conference (EBEC 2012).
萨扎诺夫团队成功测定了完整细菌复合物I的X射线结构,这对复合物I的研究进展做出了巨大贡献。在这篇对我和我的合作者35年研究历程的简短回顾中,我们阐述了与蛋白质结合的半醌分子在复合物I(NADH-醌氧化还原酶)质子泵机制中的功能。在萨扎诺夫团队和布兰特团队报道复合物I的X射线结构之前,我们利用电子顺磁共振(EPR)技术构建了大部分假设框架。其中一种半醌(SQ(Nf))对施加在能量转换膜上的质子动力势极为敏感,而另一种(SQ(Ns))则不敏感。它们对鱼藤酮抑制的敏感性也有所不同。利用呼吸控制率高(>8)的紧密偶联牛心亚线粒体颗粒,我们利用了这些差异。基于它们之间直接的自旋-自旋相互作用,我们测定了SQ(Nf)与铁硫簇N2之间的距离。我们正在使用呼吸控制率>5的重组牛心复合物I蛋白脂质体扩展这一研究方向。两个前沿研究小组基于他们的诱变研究支持了我们的观点。高频(33.9GHz;Q波段)EPR实验似乎支持我们的双半醌模型。本文是名为“第17届欧洲生物能量学会议(EBEC 2012)”的特刊的一部分。