神经干细胞
创伤性脑损伤
神经调节
钛酸钡
干细胞
神经科学
材料科学
生物医学工程
移植
医学
神经元
刺激
生物神经网络
经颅直流电刺激
脊髓损伤
纳米线
脑刺激
再生医学
再生(生物学)
神经假体
细胞分化
神经假体
作者
Keyi Li,Wenhan Wang,Wenjun Ma,Yiwei Li,Jiahao Zhang,Ailing Yin,Liang Wang,Boyan Li,Qingtong Wang,Gang Li,Hong Liu,Jichuan Qiu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-10-20
卷期号:19 (42): 36943-36957
被引量:3
标识
DOI:10.1021/acsnano.5c08752
摘要
The inherently constrained regenerative capacity of neuronal tissue poses a major obstacle to repairing traumatic brain injury. While neural stem cell transplantation holds promise, its efficacy is constrained by slow and inefficient neuronal differentiation. Here, we engineered piezo-nanowired stem cells by anchoring piezoelectric barium titanate nanowires to neural stem cell membranes, enabling ultrasound-powered piezoelectrical stimulation to drive neuronal differentiation. The high-aspect-ratio barium titanate nanowires stably localize on cell membranes, enabling targeted electrical stimulation to membrane-bound receptors under ultrasound. In vitro, this approach accelerated neuronal differentiation by 5 days, increasing the mature neuron ratio from 14.0% to 30.7%, and enhancing synaptic network complexity. In a traumatic brain injury rat model, barium titanate nanowires combined with ultrasound promoted rapid neural stem cells differentiation into functional neurons, restoring motor and cognitive functions and reconstructing neural networks at the injury site. By integrating wireless piezoelectric stimulation with neural stem cell transplantation, this work provides a promising approach for precise neuromodulation in neurological regeneration.
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