Department of Chemistry, Graduate School of Science, Kobe University, Nada, Kobe 657-8501, Japan.
Anal Biochem. 2011 Oct 1;417(1):129-35. doi: 10.1016/j.ab.2011.06.003. Epub 2011 Jun 12.
The catalytic activity of a membrane-bound enzyme, d-fructose dehydrogenase (FDH), at the polarized oil/water (O/W) interface was studied. Multisweep cyclic voltammetry and ac voltammetry were carried out to show the irreversible adsorption of FDH at the interface. Using the thusly prepared FDH-adsorbed O/W interface, clear steady-state catalytic current was observed in amperometry and cyclic voltammetry, where 1,1'-dimethylferrocenium ion (DiMFc(+), electron acceptor) and d-fructose (substrate) were added to the O and W phases, respectively. The observed catalytic current was then analyzed by using two mechanisms. In mechanism (A), the heme c site of FDH, where DiMFc(+) is reduced, was assumed to be located in the O-phase side of the interface. The intramolecular electron transfer in FDH should be affected by the Galvani potential difference of the interface (Δ(O)(W)ϕ). However, the theoretical equations derived for the catalytic current could not reproduce the experimental data. In mechanism (B), the heme c site was assumed to be in the W-phase side. In this case, Δ(O)(W)ϕ should affect the interfacial distribution of DiMFc(+). This mechanism could reproduce well the observed potential dependence of the catalytic current.
研究了膜结合酶 d-果糖脱氢酶(FDH)在极性油/水(O/W)界面的催化活性。采用多扫循环伏安法和交流伏安法证明了 FDH 在界面上的不可逆吸附。利用如此制备的 FDH 吸附的 O/W 界面,在恒电流和循环伏安法中观察到清晰的稳态催化电流,其中 1,1'-二甲基二茂铁鎓离子(DiMFc(+),电子受体)和 d-果糖(底物)分别添加到 O 和 W 相中。然后通过两种机制分析观察到的催化电流。在机制 (A) 中,假设 FDH 中还原 DiMFc(+)的血红素 c 位点位于界面的 O 相侧。FDH 中的分子内电子转移应该受到界面的伽伐尼电势差 (Δ(O)(W)ϕ) 的影响。然而,推导出的催化电流理论方程无法重现实验数据。在机制 (B) 中,假设血红素 c 位点位于 W 相侧。在这种情况下,Δ(O)(W)ϕ 应该会影响 DiMFc(+)的界面分布。该机制可以很好地重现观察到的催化电流的电位依赖性。