推进
离子键合
尿素酶
纳米技术
化学
材料科学
离子
生物化学
酶
航空航天工程
有机化学
工程类
作者
Xavier Arqué,Xavier Andrés,Rafael Mestre,Bernard Ciraulo,Jaime Ortega Arroyo,Romain Quidant,Tania Patiño,Samuel Sánchez
出处
期刊:Research
[American Association for the Advancement of Science]
日期:2020-01-01
卷期号:2020: 2424972-2424972
被引量:54
标识
DOI:10.34133/2020/2424972
摘要
bioavailable fuels, which makes them excellent candidates for biomedical applications. However, fundamental issues like their motion in biological fluids and the understanding of the propulsion mechanism are critical aspects to be tackled before a future application in biomedicine. Herein, we investigated the physicochemical effects of ionic species on the self-propulsion of urease-powered micromotors. Results showed that the presence of PBS, NaOH, NaCl, and HEPES reduced self-propulsion of urease-powered micromotors pointing towards ion-dependent mechanisms of motion. We studied the 3D motion of urease micromotors using digital holographic microscopy to rule out any motor-surface interaction as the cause of motion decay when salts are present in the media. In order to protect and minimize the negative effect of ionic species on micromotors' performance, we coated the motors with methoxypolyethylene glycol amine (mPEG) showing higher speed compared to noncoated motors at intermediate ionic concentrations. These results provide new insights into the mechanism of urease-powered micromotors, study the effect of ionic media, and contribute with potential solutions to mitigate the reduction of mobility of enzyme-powered micromotors.
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