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利用金纳米棒固定的聚多巴胺薄膜增强热等离子体神经调控

Enhancement of Thermoplasmonic Neural Modulation Using a Gold Nanorod-Immobilized Polydopamine Film.

机构信息

Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2022 Jun 1;14(21):24122-24132. doi: 10.1021/acsami.2c03289. Epub 2022 May 19.

Abstract

Photothermal neural activity inhibition has emerged as a minimally invasive neuromodulation technology with submillimeter precision. One of the techniques involves the utilization of plasmonic gold nanoparticles (AuNPs) to modulate neural activity by photothermal effects ("thermoplasmonics"). A surface modification technique is often required to integrate AuNPs onto the neural interface. Here, polydopamine (pDA), a multifunctional adhesive polymer with a wide light absorption spectrum, is introduced both as a primer layer for the immobilization of gold nanorods (GNRs) on the neural interface and as an additional photothermal agent by absorbing near-infrared red (NIR) lights for more efficient photothermal effects. First, the optical and photothermal properties of pDA as well as the characteristics of GNRs attached onto the pDA film are investigated for the optimized photothermal neural interface. Due to the covalent bonding between GNR surfaces and pDA, GNRs immobilized on pDA showed strong attachment onto the surface, yielding a more stable photothermal platform. Lastly, when photothermal neural stimulation was applied to the primary rat hippocampal neurons, the substrate with GNRs immobilized on the pDA film allowed more laser power-efficient photothermal neuromodulation as well as photothermal cell death. This study suggests the feasibility of using pDA as a surface modification material for developing a photothermal platform for the inhibition of neural activities.

摘要

光热神经活动抑制已成为一种具有亚毫米精度的微创神经调节技术。其中一种技术涉及利用等离子体金纳米粒子(AuNPs)通过光热效应(“热等离子体学”)来调节神经活动。通常需要表面修饰技术将 AuNPs 整合到神经接口上。在这里,聚多巴胺(pDA),一种具有广泛光吸收光谱的多功能粘附聚合物,不仅作为金纳米棒(GNRs)在神经界面上固定的底漆层,而且还作为额外的光热剂,通过吸收近红外(NIR)光来实现更有效的光热效应。首先,研究了 pDA 的光学和光热特性以及附着在 pDA 膜上的 GNR 的特性,以优化光热神经界面。由于 GNR 表面与 pDA 之间的共价键,固定在 pDA 上的 GNR 表现出强烈的表面附着,从而产生更稳定的光热平台。最后,当对原代大鼠海马神经元进行光热神经刺激时,固定在 pDA 膜上的 GNRs 的基底允许更高效的激光功率光热神经调节以及光热细胞死亡。这项研究表明,使用 pDA 作为表面修饰材料来开发用于抑制神经活动的光热平台是可行的。

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