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神经元与物理环境的相互作用。

Interactions of Neurons with Physical Environments.

机构信息

Faculty of Engineering and Bar-Ilan Institute for Nanotechnology and Advanced Materials, Bar-Ilan University, Ramat-Gan, 5290002, Israel.

Center for Cell-Encapsulation Research, Department of Chemistry, KAIST, Daejeon, 34141, Korea.

出版信息

Adv Healthc Mater. 2017 Aug;6(15). doi: 10.1002/adhm.201700267. Epub 2017 Jun 22.

Abstract

Nerve growth strongly relies on multiple chemical and physical signals throughout development and regeneration. Currently, a cure for injured neuronal tissue is an unmet need. Recent advances in fabrication technologies and materials led to the development of synthetic interfaces for neurons. Such engineered platforms that come in 2D and 3D forms can mimic the native extracellular environment and create a deeper understanding of neuronal growth mechanisms, and ultimately advance the development of potential therapies for neuronal regeneration. This progress report aims to present a comprehensive discussion of this field, focusing on physical feature design and fabrication with additional information about considerations of chemical modifications. We review studies of platforms generated with a range of topographies, from micro-scale features down to topographical elements at the nanoscale that demonstrate effective interactions with neuronal cells. Fabrication methods are discussed as well as their biological outcomes. This report highlights the interplay between neuronal systems and the important roles played by topography on neuronal differentiation, outgrowth, and development. The influence of substrate structures on different neuronal cells and parameters including cell fate, outgrowth, intracellular remodeling, gene expression and activity is discussed. Matching these effects to specific needs may lead to the emergence of clinical solutions for patients suffering from neuronal injuries or brain-machine interface (BMI) applications.

摘要

神经的生长强烈依赖于发育和再生过程中的多种化学和物理信号。目前,对于受损神经元组织的治疗仍然是一个未满足的需求。最近制造技术和材料的进步导致了用于神经元的合成界面的发展。这种二维和三维形式的工程平台可以模拟天然的细胞外环境,并深入了解神经元生长机制,最终促进潜在神经元再生治疗方法的发展。本进展报告旨在全面讨论这一领域,重点介绍物理特征设计和制造,并提供有关化学修饰考虑因素的附加信息。我们回顾了一系列具有不同形貌的平台的研究,从微观特征到纳米尺度的形貌元素,这些都展示了与神经元细胞的有效相互作用。讨论了制造方法及其生物学结果。本报告强调了神经元系统之间的相互作用以及形貌对神经元分化、生长和发育的重要作用。讨论了基底结构对不同神经元细胞的影响以及包括细胞命运、生长、细胞内重塑、基因表达和活性在内的参数。将这些影响与特定需求相匹配,可能会为遭受神经元损伤或脑机接口 (BMI) 应用的患者带来临床解决方案的出现。

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