Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences , Nanyang Technological University , Singapore 637371 , Singapore.
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing , Wuhan University of Technology , Wuhan 430070 , People's Republic of China.
Anal Chem. 2019 May 7;91(9):5660-5666. doi: 10.1021/acs.analchem.8b05464. Epub 2019 Apr 15.
Artificial self-propelled micromachines have shown great promise in biomedical sciences. In this work, we use Mg/Pt Janus micromotors with self-rejuvenating surfaces to enhance the electrochemical sensing performance and sensitivity toward glucose in human serum. The detection of glucose is based on the glucose oxidase enzyme and ferrocenemethanol shuttle system, where mass transfer was dramatically enhanced by the rapid motion of Mg/Pt Janus micromotors. The obtained chronoamperometric data show that Mg/Pt Janus micromotors play a synergistic role in enhancing the current response at millimolar concentrations of glucose in human serum. The current signals increased with the corresponding increase in amount of micromotors introduced. Furthermore, a linear relationship between current signal and glucose concentration was established, while the limit of detection improved when mobile Mg/Pt Janus micromachines were used. Glucose detection enhanced by micromachines may pave the way for their future applications in biomedicine and medical diagnostic devices.
人工自主推进的微纳机器在生物医学科学中展现出了巨大的应用潜力。在这项工作中,我们使用具有自修复表面的 Mg/Pt 双金属 Janus 微马达来提高电化学传感性能和对人血清中葡萄糖的灵敏度。葡萄糖的检测基于葡萄糖氧化酶和二茂铁甲醇穿梭体系,Mg/Pt 双金属 Janus 微马达的快速运动极大地增强了质量传递。获得的计时电流数据表明,Mg/Pt 双金属 Janus 微马达在增强人血清中毫摩尔浓度葡萄糖的电流响应方面发挥了协同作用。电流信号随着引入的微马达数量的相应增加而增加。此外,建立了电流信号与葡萄糖浓度之间的线性关系,而当使用可移动的 Mg/Pt 双金属 Janus 微机器时,检测限得到了改善。微机器增强的葡萄糖检测可能为它们在生物医学和医疗诊断设备中的未来应用铺平道路。