创伤性脑损伤
干细胞
医学
干细胞疗法
神经科学
生物信息学
生物
细胞生物学
精神科
作者
Xiaogang Wang,Jingyi Du,Qilu Liu,Dongshuang Wang,Wenhan Wang,Ming Lei,Keyi Li,Yiwei Li,Aijun Hao,Yuanhua Sang,Fan Yi,Wenjuan Zhou,Hong Liu,Chuanbin Mao,Jichuan Qiu
标识
DOI:10.1038/s41467-024-51098-y
摘要
Electrical stimulation holds promise for enhancing neuronal differentiation of neural stem cells to treat traumatic brain injury. However, once the stem cells leave the stimulating material and migrate post transplantation, electrical stimulation on them is diminished. Here, we wrap the stem cells with wireless electrical nanopatches, the conductive graphene nanosheets. Under electromagnetic induction, electrical stimulation can thus be applied in-situ to individual nanopatch-wrapped stem cells on demand, stimulating their neuronal differentiation through a MAPK/ERK signaling pathway. Consequently, 41% of the nanopatch-wrapped stem cells differentiate into functional neurons in 5 days, as opposed to only 16.3% of the unwrapped ones. The brain injury male mice implanted with the nanopatch-wrapped stem cells and exposed to a rotating magnetic field 30 min/day exhibit significant recovery of brain tissues, behaviors, and cognitions, within 28 days. This study opens up an avenue to individualized electrical stimulation of transplanted stem cells for treating neurodegenerative diseases. Electrical stimulation holds promise for enhancing neuronal differentiation of neural stem cells to treat traumatic brain injury. Here, the authors wrap stem cells with wireless electrical nanopatches and apply electrical stimulation in-situ to individual nanopatch-wrapped stem cells on demand
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