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Wireless Manipulation of Magnetic/Piezoelectric Micromotors for Precise Neural Stem-Like Cell Stimulation

机译:磁/压电微电机的无线操纵,用于精确的神经干细胞样细胞刺激。

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摘要

Precise neural electrical stimulation, which is a means of promoting neuronal regeneration, is a promising solution for patients with neurotrauma and neurodegenerative diseases. In this study, wirelessly controllable targeted motion and precise stimulation at the single-cell level using S.platensis@Fe3O4@tBaTiO(3) micromotors are successfully demonstrated for the first time. A highly versatile and multifunctional biohybrid soft micromotor is fabricated via the integration of S.platensis with magnetic Fe3O4 nanoparticles and piezoelectric BaTiO3 nanoparticles. The results show that this micromotor system can achieve navigation in a highly controllable manner under a low-strength rotating magnetic field. The as-developed system can achieve single-cell targeted motion and then precisely induce the differentiation of the targeted neural stem-like cell by converting ultrasonic energy to an electrical signal in situ owing to the piezoelectric effect. This new approach toward the high-precision stimulation of neural stem-like cells opens up new applications for micromotors and has excellent potential for precise neuronal regenerative therapies.
机译:精确的神经电刺激是促进神经元再生的一种手段,对于患有神经外伤和神经退行性疾病的患者而言,是一种有前途的解决方案。在这项研究中,首次成功证明了使用S.platensis @ Fe3O4 @ tBaTiO(3)微电机在单细胞水平上实现了无线可控的定向运动和精确刺激。通过将S.platensis与磁性Fe3O4纳米颗粒和压电BaTiO3纳米颗粒相集成,制造了一种多功能的多功能生物混合软微电机。结果表明,该微电机系统可以在低强度旋转磁场下以高度可控的方式实现导航。所开发的系统可以实现单细胞靶向运动,然后由于压电效应将超声能量转换为原位电信号,从而精确地诱导靶向神经干细胞样细胞的分化。这种对神经干样细胞进行高精度刺激的新方法为微电机开辟了新的应用领域,并且在精确的神经元再生疗法方面具有极好的潜力。

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