神经假体
压电
钛酸钡
材料科学
神经细胞
纳米医学
纳米颗粒
电极
再生医学
刺激
纳米技术
生物医学工程
医学
神经科学
细胞
光电子学
化学
生物
电介质
复合材料
生物化学
物理化学
作者
Mertcan Han,Erdost Yıldız,Ugur Bozuyuk,Asli Aydin,Yan Yu,Aarushi Bhargava,Selcan Karaz,Metin Sitti
标识
DOI:10.1038/s41467-024-46245-4
摘要
Abstract Electrical stimulation is a fundamental tool in studying neural circuits, treating neurological diseases, and advancing regenerative medicine. Injectable, free-standing piezoelectric particle systems have emerged as non-genetic and wireless alternatives for electrode-based tethered stimulation systems. However, achieving cell-specific and high-frequency piezoelectric neural stimulation remains challenging due to high-intensity thresholds, non-specific diffusion, and internalization of particles. Here, we develop cell-sized 20 μm-diameter silica-based piezoelectric magnetic Janus microparticles (PEMPs), enabling clinically-relevant high-frequency neural stimulation of primary neurons under low-intensity focused ultrasound. Owing to its functionally anisotropic design, half of the PEMP acts as a piezoelectric electrode via conjugated barium titanate nanoparticles to induce electrical stimulation, while the nickel-gold nanofilm-coated magnetic half provides spatial and orientational control on neural stimulation via external uniform rotating magnetic fields. Furthermore, surface functionalization with targeting antibodies enables cell-specific binding/targeting and stimulation of dopaminergic neurons. Taking advantage of such functionalities, the PEMP design offers unique features towards wireless neural stimulation for minimally invasive treatment of neurological diseases.
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