柔性生物电子学中软性和生物活性材料的研究进展。

IF 10.5 Q1 ENGINEERING, BIOMEDICAL
Cyborg and bionic systems (Washington, D.C.) Pub Date : 2025-04-29 eCollection Date: 2025-01-01 DOI:10.34133/cbsystems.0192
Xiaojun Wu, Yuanming Ye, Mubai Sun, Yongfeng Mei, Bowen Ji, Ming Wang, Enming Song
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引用次数: 0

摘要

为长期监测/刺激目标组织建立功能稳定界面的材料具有诊断/治疗能力,代表着生物医学研究和临床医学的突破。一个基本的挑战是组织和植入物之间的机械和化学不匹配,最终导致设备因生物流体和相关的异物反应腐蚀而失效。特别感兴趣的是在化学和力学水平上开发生物活性材料,以实现高性能,微创功能,同时具有组织样顺应性和体内生物相容性。本文综述了这些领域的最新进展,重点介绍了材料特性,如异物反应,与生物组织的整合方案,以及它们作为生物电子平台的应用。本文首先概述了新兴类别的材料平台,用于生物集成,在活体动物模型中具有成熟的实用性,作为具有不同形状因素的高性能和稳定的接口。随后的章节回顾了各种类别的柔性,软组织样材料,从自修复水凝胶/弹性体到生物粘合剂复合材料和生物活性材料。其他讨论强调了主动生物电子系统的例子,这些系统支持电生理制图、刺激和药物递送,作为相关疾病的治疗,在从细胞水平到器官尺度的时空分辨率上。设想的应用包括用于大脑、心脏和其他器官系统的先进植入物,这些植入物具有生物活性材料的能力,可以为人类受试者和活体动物模型提供稳定性。结果将激发生物系统功能和良性界面的持续进步,从而为人类医疗保健提供治疗和诊断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent Progress of Soft and Bioactive Materials in Flexible Bioelectronics.

Materials that establish functional, stable interfaces to targeted tissues for long-term monitoring/stimulation equipped with diagnostic/therapeutic capabilities represent breakthroughs in biomedical research and clinical medicine. A fundamental challenge is the mechanical and chemical mismatch between tissues and implants that ultimately results in device failure for corrosion by biofluids and associated foreign body response. Of particular interest is in the development of bioactive materials at the level of chemistry and mechanics for high-performance, minimally invasive function, simultaneously with tissue-like compliance and in vivo biocompatibility. This review summarizes the most recent progress for these purposes, with an emphasis on material properties such as foreign body response, on integration schemes with biological tissues, and on their use as bioelectronic platforms. The article begins with an overview of emerging classes of material platforms for bio-integration with proven utility in live animal models, as high performance and stable interfaces with different form factors. Subsequent sections review various classes of flexible, soft tissue-like materials, ranging from self-healing hydrogel/elastomer to bio-adhesive composites and to bioactive materials. Additional discussions highlight examples of active bioelectronic systems that support electrophysiological mapping, stimulation, and drug delivery as treatments of related diseases, at spatiotemporal resolutions that span from the cellular level to organ-scale dimension. Envisioned applications involve advanced implants for brain, cardiac, and other organ systems, with capabilities of bioactive materials that offer stability for human subjects and live animal models. Results will inspire continuing advancements in functions and benign interfaces to biological systems, thus yielding therapy and diagnostics for human healthcare.

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来源期刊
CiteScore
7.70
自引率
0.00%
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审稿时长
21 weeks
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