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用于长期组织整合和记录的可重塑基质的 3D 生物电子学。

3D Bioelectronics with a Remodellable Matrix for Long-Term Tissue Integration and Recording.

机构信息

Department of Chemical Engineering and Biotechnology, University of Cambridge, West Cambridge Site, Philippa Fawcett Dr, Cambridge, CB3 0AS, UK.

Department of Engineering, Electrical Engineering Division, University of Cambridge, 9 JJ Thomson Ave, Cambridge, CB3 0FA, UK.

出版信息

Adv Mater. 2023 Feb;35(8):e2207847. doi: 10.1002/adma.202207847. Epub 2022 Dec 21.

Abstract

Bioelectronics hold the key for understanding and treating disease. However, achieving stable, long-term interfaces between electronics and the body remains a challenge. Implantation of a bioelectronic device typically initiates a foreign body response, which can limit long-term recording and stimulation efficacy. Techniques from regenerative medicine have shown a high propensity for promoting integration of implants with surrounding tissue, but these implants lack the capabilities for the sophisticated recording and actuation afforded by electronics. Combining these two fields can achieve the best of both worlds. Here, the construction of a hybrid implant system for creating long-term interfaces with tissue is shown. Implants are created by combining a microelectrode array with a bioresorbable and remodellable gel. These implants are shown to produce a minimal foreign body response when placed into musculature, allowing one to record long-term electromyographic signals with high spatial resolution. This device platform drives the possibility for a new generation of implantable electronics for long-term interfacing.

摘要

生物电子学是理解和治疗疾病的关键。然而,实现电子设备与人体之间稳定、长期的接口仍然是一个挑战。生物电子设备的植入通常会引发异物反应,从而限制长期记录和刺激的效果。再生医学的技术已经显示出促进植入物与周围组织整合的高度倾向,但这些植入物缺乏电子设备提供的复杂记录和驱动能力。将这两个领域结合起来可以达到两全其美。在这里,展示了一种用于与组织建立长期接口的混合植入系统的构建。通过将微电极阵列与可生物吸收和可重塑的凝胶相结合来制造植入物。当这些植入物被放置在肌肉中时,只会产生最小的异物反应,从而可以以高空间分辨率长期记录肌电图信号。该器件平台为新一代可长期接口的可植入电子设备提供了可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4bb/11475589/b508f005c590/ADMA-35-2207847-g004.jpg

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