Department of Molecular Membrane Biology, Max Planck Institute of Biophysics, Frankfurt am Main, Germany.
Biophys J. 2012 Sep 19;103(6):1305-14. doi: 10.1016/j.bpj.2012.07.037.
The E-pathway of transmembrane proton transfer has been demonstrated previously to be essential for catalysis by the diheme-containing quinol:fumarate reductase (QFR) of Wolinella succinogenes. Two constituents of this pathway, Glu-C180 and heme b(D) ring C (b(D)-C-) propionate, have been validated experimentally. Here, we identify further constituents of the E-pathway by analysis of molecular dynamics simulations. The redox state of heme groups has a crucial effect on the connectivity patterns of mobile internal water molecules that can transiently support proton transfer from the b(D)-C-propionate to Glu-C180. The short H-bonding paths formed in the reduced states can lead to high proton conduction rates and thus provide a plausible explanation for the required opening of the E-pathway in reduced QFR. We found evidence that the b(D)-C-propionate group is the previously postulated branching point connecting proton transfer to the E-pathway from the quinol-oxidation site via interactions with the heme b(D) ligand His-C44. An essential functional role of His-C44 is supported experimentally by site-directed mutagenesis resulting in its replacement with Glu. Although the H44E variant enzyme retains both heme groups, it is unable to catalyze quinol oxidation. All results obtained are relevant to the QFR enzymes from the human pathogens Campylobacter jejuni and Helicobacter pylori.
先前已经证明,跨膜质子转移的 E 途径对于二血红素含有的 Wolinella succinogenes 中的醌:延胡索酸还原酶(QFR)的催化是必不可少的。该途径的两个组成部分,Glu-C180 和血红素 b(D)-C 环 C(b(D)-C-)丙酸酯,已通过实验验证。在这里,我们通过分子动力学模拟分析鉴定了 E 途径的其他组成部分。血红素基团的氧化还原状态对可瞬时支持质子从 b(D)-C-丙酸酯转移到 Glu-C180 的可移动内部水分子的连接模式有至关重要的影响。在还原状态下形成的短氢键路径可以导致高质子传导率,从而为还原 QFR 中 E 途径的必需打开提供了合理的解释。我们发现有证据表明,b(D)-C-丙酸酯基团是以前假定的分支点,通过与血红素 b(D)配体 His-C44 的相互作用,将质子转移连接到 E 途径,来自醌氧化位点。定点突变实验证实了 His-C44 的重要功能作用,导致其被Glu 取代。尽管 H44E 变体酶保留了两个血红素基团,但它无法催化醌氧化。所有获得的结果都与人类病原体空肠弯曲菌和幽门螺杆菌的 QFR 酶有关。