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Control the Neural Stem Cell Fate with Biohybrid Piezoelectrical Magnetite Micromotors

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*
Science Citation Index Expanded
南方医科大学; 中山大学

摘要

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 Spirulina plantensis (S. platensis) as the framework and superparamagnetic Fe3O4 nanoparticles/piezoelectric BaTiO3 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.

关键词

micromotors magnetic actuation neural stem cells piezoelectric stimulation stem cells differentiation