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基于黑磷薄片的无线神经调节技术治疗癫痫

Black Phosphorus Flake-Enabled Wireless Neuromodulation for Epilepsy Treatment.

机构信息

Research Center for Translational Medicine, Shanghai East Hospital affiliated to Tongji University School of Medicine; The Institute for Biomedical Engineering & Nano Science, Tongji University School of Medicine, Shanghai 200092, China.

出版信息

Nano Lett. 2024 Jan 31;24(4):1052-1061. doi: 10.1021/acs.nanolett.3c03472. Epub 2023 Nov 13.

Abstract

Epilepsy is a prevalent and severe neurological disorder and generally requires prolonged electrode implantation and tether brain stimulation in refractory cases. However, implants may cause potential chronic immune inflammation and permanent tissue damage due to material property mismatches with soft brain tissue. Here, we demonstrated a nanomaterial-enabled near-infrared (NIR) neuromodulation approach to provide nongenetic and nonimplantable therapeutic benefits in epilepsy mouse models. Our study showed that crystal-exfoliated photothermal black phosphorus (BP) flakes could enhance neural activity by altering the membrane capacitive currents in hippocampus neurons through NIR photothermal neuromodulation. Optical stimulation facilitated by BP flakes in hippocampal slices evoked action potentials with a high spatiotemporal resolution. Furthermore, BP flake-enabled NIR neuromodulation of hippocampus neural circuits can suppress epileptic signals in epilepsy model mice with minimal invasiveness and high biocompatibility. Consequently, nanomaterial-enabled NIR neuromodulation may open up opportunities for nonimplantable optical therapy of epilepsy in nontransgenic organisms.

摘要

癫痫是一种常见且严重的神经障碍,通常需要在难治性病例中进行长时间的电极植入和拴系脑刺激。然而,由于植入物与软脑组织的材料特性不匹配,可能会引起潜在的慢性免疫炎症和永久性组织损伤。在这里,我们展示了一种基于纳米材料的近红外(NIR)神经调节方法,为癫痫小鼠模型提供非遗传和非植入的治疗益处。我们的研究表明,通过 NIR 光热神经调节,晶体剥离的光热黑磷(BP)薄片可以通过改变海马神经元的膜电容电流来增强神经活动。BP 薄片促进的海马切片中的光刺激以高时空分辨率引发动作电位。此外,BP 薄片实现的海马神经回路的 NIR 神经调节可以在最小侵入性和高生物相容性的情况下抑制癫痫模型小鼠的癫痫信号。因此,基于纳米材料的 NIR 神经调节可能为非转基因生物的癫痫非植入式光学治疗开辟新的机会。

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