不可变形胶粘水凝胶贴片实现稳定的慢性ECoG记录的鲁棒神经接口

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Wenlong Li, Xing Li, Ming Yang, Wenliang Liu, Renyuan Sun, Yuyi Peng, Jinkun Wang, Zhengwei Hu, Ke Fang, Bing Liu, Xiaojian Li, Zhiqiang Luo
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引用次数: 0

摘要

微皮质电图(micro-ECoG)具有优越的时间和空间分辨率,在精确的脑成像和脑活动解码中起着至关重要的作用。然而,由于脑脊液中不可避免的装置-脑位移,微ECoG装置在皮质蛛网膜组织上的弱物理附着不能保证稳定的神经界面,无法长期持久可靠地记录ECoG。在这里,我们探索了一个鲁棒的神经接口,使用生物粘合剂水凝胶贴片来稳定地记录慢性ECoG。为了克服水凝胶在尺寸上的不稳定性,如膨胀和收缩,从而阻碍微ecog设备在脆弱的皮质表面上的安全集成,通过合理设计一种具有平衡分子链拓扑结构的不可变形水凝胶贴片,以抵抗尺寸变化。该多功能不可变形水凝胶具有快速湿组织粘附(30秒内)、抗术后粘附、优异的生物相容性、易于手术操作和可大规模生产的可扩展性等优点。与传统的肿胀或收缩水凝胶相比,皮质表面的不可变形水凝胶贴片可以有效地抑制纤维囊的形成和胶质细胞的募集。此外,与不可变形的水凝胶贴片集成的微ecog设备的长期记录显示出出色的稳定性和高保真的电生理信号,使其成为慢性,耐用和可靠的神经接口应用的有希望的进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Robust Neural Interfaces Enabled by Non-Deformable Adhesive Hydrogel Patch for Stable Chronic ECoG Recording

Robust Neural Interfaces Enabled by Non-Deformable Adhesive Hydrogel Patch for Stable Chronic ECoG Recording
Micro-electrocorticography (micro-ECoG) with superior temporal and spatial resolution plays a critical role in precise brain mapping and decoding of brain activities. However, due to inevitable device-brain displacement in cerebrospinal fluid, the weak physical attachment of micro-ECoG devices on the cortical arachnoid tissue cannot ensure a stable neural interface to achieve durable and reliable ECoG recording over time. Herein, a robust neural interface is explored using a bio-adhesive hydrogel patch for stable chronic ECoG recording. To overcome the challenges in dimensional instability of hydrogels, such as swelling and shrinkage, which would impede the safe integration of micro-ECoG devices on fragile cortical surface, a non-deformable hydrogel patch is developed through rational design with balanced molecular chain topology to resist dimensional changes. The multifunctional non-deformable hydrogel demonstrates desired merits including rapid wet-tissue adhesion (within 30 s), anti-postoperative adhesion, excellent biocompatibility, ease of surgical handling, and scalability for large-scale production. Compared to conventional swelling or contractile hydrogels, the non-deformable hydrogel patch on a cortical surface can effectively inhibit fibrous capsule formation and glial cell recruitment. Furthermore, long-term recordings from micro-ECoG devices integrated with non-deformable hydrogel patches demonstrate excellent stability and high-fidelity electrophysiological signals, making it a promising advancement for chronic, durable, and reliable neural interface applications.
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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