Liu Lu, Wu Juanyan, Wang Shuanghu, Kun Liu, Gao Junbin, Chen Bin, Ye Yicheng, Wang Fei, Tong Fei, Jiang Jiamiao, Ou Juanfeng, Wilson Daniela A, Tu Yingfeng, Peng Fei
School of Materials Science and Engineering, Sun Yat-Sen University, Guangzhou 510275, China.
School of Pharmaceutical Science, Guangdong Provincial Key Laboratory of New Drug Screening, Southern Medical University, Guangzhou 510515, China.
Nano Lett. 2021 Apr 28;21(8):3518-3526. doi: 10.1021/acs.nanolett.1c00290. Epub 2021 Apr 13.
Inducing neural stem cells to differentiate and replace degenerated functional neurons represents the most promising approach for neural degenerative diseases including Parkinson's disease, Alzheimer's disease, etc. While diverse strategies have been proposed in recent years, most of these are hindered due to uncontrollable cell fate and device invasiveness. Here, we report a minimally invasive micromotor platform with biodegradable helical () as the framework and superparamagnetic FeO nanoparticles/piezoelectric BaTiO nanoparticles as the built-in function units. With a low-strength rotational magnetic field, this integrated micromotor system can perform precise navigation in biofluid and achieve single-neural stem cell targeting. Remarkably, by tuning ultrasound intensity, thus the local electrical output by the motor, directed differentiation of the neural stem cell into astrocytes, functional neurons (dopamine neurons, cholinergic neurons), and oligodendrocytes, can be achieved. This micromotor platform can serve as a highly controllable wireless tool for bioelectronics and neuronal regenerative therapy.
诱导神经干细胞分化并替代退化的功能性神经元是治疗包括帕金森病、阿尔茨海默病等神经退行性疾病最有前景的方法。尽管近年来提出了多种策略,但由于细胞命运不可控和设备侵入性等问题,其中大多数都受到了阻碍。在此,我们报道了一种微创微马达平台,该平台以可生物降解的螺旋体()为框架,以超顺磁性FeO纳米颗粒/压电BaTiO纳米颗粒作为内置功能单元。借助低强度旋转磁场,这种集成微马达系统能够在生物流体中进行精确导航并实现对单个神经干细胞的靶向。值得注意的是,通过调节超声强度,进而调节微马达的局部电输出,可以实现神经干细胞向星形胶质细胞、功能性神经元(多巴胺能神经元、胆碱能神经元)和少突胶质细胞的定向分化。这种微马达平台可作为生物电子学和神经元再生治疗的高度可控无线工具。