神经调节
材料科学
癫痫
神经科学
医学
刺激
药品
生物医学工程
药物输送
脑刺激
药物治疗
纳米技术
压电
脑电刺激
中枢神经系统
神经系统
纳米医学
血脑屏障
药理学
脑-机接口
脑电图
作者
Jian Li,Xueting Pan,He Li,Xingyu Ren,Tao Tan,Menghan Wang,Junyao Zhu,Yi Yu,Hai Wang,Zhenlin Fan
标识
DOI:10.1002/adfm.202518001
摘要
Abstract Epilepsy is one of the most prevalent central nervous system disorders, with antiepileptic drugs (AEDs) as the mainstay of treatment. While effective in reducing seizure frequency in ≈70% of patients, traditional AEDs are limited by blood concentration fluctuations, drug resistance, and cognitive side effects. Neuromodulation, particularly electrical stimulation, has emerged as a promising alternative by reversibly regulating abnormal neural circuits. However, conventional systems require implanted electrodes and external power sources, increasing the risk of trauma and infection. Piezoelectric nanomaterials offer a non‐invasive strategy by converting endogenous biomechanical forces or ultrasound stimulation into localized electric currents, inducing neuronal hyperpolarization to suppress excitation. Based on this mechanism, a biomimetic piezoelectric nanoplatform is developed capable of ultrasound‐triggered electrical stimulation for targeted neuromodulation without surgical implantation. Additionally, these nanoplatforms can co‐deliver AEDs, enabling a dual therapeutic approach that combines localized stimulation with sustained drug release, enhancing efficacy while minimizing systemic exposure. This synergistic integration of ultrasound‐responsive piezoelectric nanoplatforms and pharmacotherapy represents a transformative paradigm for safe, effective, and non‐invasive epilepsy treatment.
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