Muresanu Lucia, Pristovsek Primoz, Löhr Frank, Maneg Oliver, Mukrasch Marco D, Rüterjans Heinz, Ludwig Bernd, Lücke Christian
Institute of Biophysical Chemistry, Center for Biomolecular Magnetic Resonance, J. W. Goethe-University, Marie-Curie-Strasse 9, D-60439 Frankfurt am Main, Germany.
J Biol Chem. 2006 May 19;281(20):14503-13. doi: 10.1074/jbc.M601108200. Epub 2006 Mar 22.
The structural analysis of the redox complex between the soluble cytochrome c552 and the membrane-integral cytochrome ba3 oxidase of Thermus thermophilus is complicated by the transient nature of this protein-protein interaction. Using NMR-based chemical shift perturbation mapping, however, we identified the contact regions between cytochrome c552 and the CuA domain, the fully functional water-soluble fragment of subunit II of the ba3 oxidase. First we determined the complete backbone resonance assignments of both proteins for each redox state. Subsequently, two-dimensional [15N,1H]TROSY spectra recorded for each redox partner both in free and complexed state indicated those surface residues affected by complex formation between the two proteins. This chemical shift analysis performed for both redox states provided a topological description of the contact surface on each partner molecule. Remarkably, very pronounced indirect effects, which were observed on the back side of the heme cleft only in the reduced state, suggested that alterations of the electron distribution in the porphyrin ring due to formation of the protein-protein complex are apparently sensed even beyond the heme propionate groups. The contact residues of each redox partner, as derived from the chemical shift perturbation mapping, were employed for a protein-protein docking calculation that provided a structure ensemble of 10 closely related conformers representing the complex between cytochrome c552 and the CuA domain. Based on these structures, the electron transfer pathway from the heme of cytochrome c552 to the CuA center of the ba3 oxidase has been predicted.
嗜热栖热菌的可溶性细胞色素c552与膜整合细胞色素ba3氧化酶之间氧化还原复合物的结构分析,因这种蛋白质-蛋白质相互作用的瞬态性质而变得复杂。然而,通过基于核磁共振的化学位移扰动图谱,我们确定了细胞色素c552与CuA结构域(ba3氧化酶亚基II的完全功能性水溶性片段)之间的接触区域。首先,我们确定了两种蛋白质在每种氧化还原状态下的完整主链共振归属。随后,针对处于游离态和复合态的每个氧化还原伙伴记录的二维[15N,1H]TROSY谱表明了那些受两种蛋白质之间复合物形成影响的表面残基。对两种氧化还原状态进行的这种化学位移分析提供了每个伙伴分子上接触表面的拓扑描述。值得注意的是,仅在还原态下在血红素裂隙背面观察到的非常明显的间接效应表明,由于蛋白质-蛋白质复合物的形成,卟啉环中电子分布的改变显然甚至在血红素丙酸基团之外也能被感知到。从化学位移扰动图谱得出的每个氧化还原伙伴的接触残基被用于蛋白质-蛋白质对接计算,该计算提供了10个紧密相关构象体的结构集合,代表细胞色素c552与CuA结构域之间的复合物。基于这些结构,预测了从细胞色素c552的血红素到ba3氧化酶的CuA中心的电子转移途径。