Department of Chemistry, Oklahoma State University, Stillwater, OK, 74078, United States.
Department of Mechanical and Aerospace Engineering, Oklahoma State University, Stillwater, OK, 74078, United States.
Colloids Surf B Biointerfaces. 2020 May;189:110790. doi: 10.1016/j.colsurfb.2020.110790. Epub 2020 Jan 28.
Low-cost, voltage-driven biocatalytic designs for rapid drug metabolism assay, chemical toxicity screening, and pollutant biosensing represent considerable significance for pharmaceutical, biomedical, and environmental applications. In this study, we have designed biointerfaces of human liver microsomes with various roughened, high-purity graphite disk electrodes to study electrochemical and electrocatalytic properties. Successful spectral and microscopic characterizations, direct bioelectronic communication, direct electron-transfer rates from the electrode to liver microsomal enzymes, microsomal heme-enzyme specific oxygen reduction currents, and voltage-driven diclofenac hydroxylation (chosen as the probe reaction) are presented.
低成本、电压驱动的生物催化设计可用于快速药物代谢分析、化学毒性筛选和污染物生物传感,这对药物、生物医学和环境应用具有重要意义。在这项研究中,我们设计了具有不同粗糙化的高纯度石墨盘电极的人肝微粒体生物界面,以研究电化学和电催化性质。成功的光谱和显微镜特征分析、直接生物电子通信、电极到肝微粒体酶的直接电子转移率、微粒体血红素酶特异性氧还原电流以及电压驱动的双氯芬酸羟化(选为探针反应)都被呈现出来。