导电性有机材料在神经组织再生中的应用

Eleana Manousiouthakis, Junggeon Park, John G Hardy, Jae Young Lee, Christine E Schmidt
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引用次数: 26

摘要

自20世纪70年代以来,碳基导电和电活性材料(例如石墨烯、富勒烯、聚吡咯、聚噻吩、聚苯胺的衍生物)已被研究用于广泛的应用。这些材料具有与常用金属相当的电学性能,同时提供其他优点,例如与生物制剂(例如细胞,生物分子)加工和改性的灵活性,以产生具有仿生机械和化学性能的电活性材料。在这篇综述中,我们重点介绍了这些导电材料在中枢和周围神经系统中的应用,特别是最近在周围神经、脊髓、脑、眼和耳方面的研究。我们还重点介绍了体内研究和临床试验,以及新兴导电材料(例如,可生物降解材料)的概况。我们相信,在可预见的未来,这种专门的导电生物材料将在临床上影响组织再生领域。意义声明:这篇综述论述了导电和电活性材料在神经组织再生中的应用,这是广大读者感兴趣的,特别是与学术界和工业界不断增长的科学家、工程师和临床医生群体有关,他们为组织工程和再生医学开发了新型医疗设备。该综述涵盖了可能使用的材料(主要集中在富勒烯、石墨烯和共轭聚合物的衍生物)和用于分析其组成材料的技术,然后是将这些材料应用于全身神经组织(即周围神经、脊髓、大脑、光学和听觉组织)的部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards the Translation of Electroconductive Organic Materials for Regeneration of Neural Tissues
Carbon-based conductive and electroactive materials (e.g., derivatives of graphene, fullerenes, polypyrrole, polythiophene, polyaniline) have been studied since the 1970s for use in a broad range of applications. These materials have electrical properties comparable to those of commonly used metals, while providing other benefits such as flexibility in processing and modification with biologics (e.g., cells, biomolecules), to yield electroactive materials with biomimetic mechanical and chemical properties. In this review, we focus on the uses of these electroconductive materials in the context of the central and peripheral nervous system, specifically recent studies in the peripheral nerve, spinal cord, brain, eye, and ear. We also highlight in vivo studies and clinical trials, as well as a snapshot of emerging classes of electroconductive materials (e.g., biodegradable materials). We believe such specialized electrically conductive biomaterials will clinically impact the field of tissue regeneration in the foreseeable future. STATEMENT OF SIGNIFICANCE: This review addresses the use of conductive and electroactive materials for neural tissue regeneration, which is of significant interest to a broad readership, and of particular relevance to the growing community of scientists, engineers and clinicians in academia and industry who develop novel medical devices for tissue engineering and regenerative medicine. The review covers the materials that may be employed (primarily focusing on derivatives of fullerenes, graphene and conjugated polymers) and techniques used to analyze materials composed thereof, followed by sections on the application of these materials to nervous tissues (i.e., peripheral nerve, spinal cord, brain, optical, and auditory tissues) throughout the body.
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