Moghaddam Abdolmajid Bayandori, Ganjali Mohammad Reza, Dinarvand Rassoul, Saboury Ali Akbar, Razavi Taherehsadat, Moosavi-Movahedi Ali Akbar, Norouzi Parviz
Center of Excellence in Electrochemistry, Faculty of Chemistry, University of Tehran, P. O. Box: 14155-6455, Tehran, Iran.
Biophys Chem. 2007 Sep;129(2-3):259-68. doi: 10.1016/j.bpc.2007.06.006. Epub 2007 Jun 22.
This work describes the performance of cytochrome c/nickel oxide nanoparticles/glassy carbon electrode, prepared by the electrochemical deposition of the nickel oxide nanoparticles (NiO NPs) on the glassy carbon (GC) electrode surface and the cytochrome c immobilization on the nickel oxide nanoparticle surfaces. An extensive sample examination with the help of the SEM and AFM presented the existence of different geometrical shapes of the nickel oxide particles. These geometrical structures could lead to the better immobilization of proteins on their surfaces. The resulting electrode displayed an excellent behavior for the redox of the cytochrome c. Also, the resulting heme protein exhibited a direct electrical contact with the electrode because of the structural alignment of the heme protein on the nanometer-scale nickel oxide surfaces. This method could be suitable for applications to nanofabricated devices. In the end, it was concluded that the cytochrome c could be tethered to the nanometer-scale nickel oxide surfaces.
这项工作描述了细胞色素c/氧化镍纳米颗粒/玻碳电极的性能,该电极是通过在玻碳(GC)电极表面电化学沉积氧化镍纳米颗粒(NiO NPs)以及将细胞色素c固定在氧化镍纳米颗粒表面而制备的。借助扫描电子显微镜(SEM)和原子力显微镜(AFM)对大量样品进行的检查表明存在不同几何形状的氧化镍颗粒。这些几何结构可导致蛋白质在其表面更好地固定。所得电极对细胞色素c的氧化还原表现出优异的性能。此外,由于血红素蛋白在纳米级氧化镍表面的结构排列,所得血红素蛋白与电极表现出直接的电接触。该方法可能适用于纳米制造器件的应用。最后得出结论,细胞色素c可以连接到纳米级氧化镍表面。