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组织工程化外周神经接口

Tissue-Engineered Peripheral Nerve Interfaces.

作者信息

Spearman Benjamin S, Desai Vidhi H, Mobini Sahba, McDermott Matthew D, Graham James B, Otto Kevin J, Judy Jack W, Schmidt Christine E

机构信息

Crayton Pruitt Family Department of Biomedical Engineering, The University of Florida, 1275 Center Dr., BMS Building JG-56, 116131, Gainesville, FL 32611-6131.

Department of Electrical and Computer Engineering, The University of Florida, 216 Larsen Hall, 116200, Gainesville, FL 32611-6200.

出版信息

Adv Funct Mater. 2018 Mar 21;28(12). doi: 10.1002/adfm.201701713. Epub 2017 Aug 18.

Abstract

Research on neural interfaces has historically concentrated on development of systems for the brain; however, there is increasing interest in peripheral nerve interfaces (PNIs) that could provide benefit when peripheral nerve function is compromised, such as for amputees. Efforts focus on designing scalable and high-performance sensory and motor peripheral nervous system interfaces. Current PNIs face several design challenges such as undersampling of signals from the thousands of axons, nerve-fiber selectivity, and device-tissue integration. To improve PNIs, several researchers have turned to tissue engineering. Peripheral nerve tissue engineering has focused on designing regeneration scaffolds that mimic normal nerve extracellular matrix composition, provide advanced microarchitecture to stimulate cell migration, and have mechanical properties like the native nerve. By combining PNIs with tissue engineering, the goal is to promote natural axon regeneration into the devices to facilitate close contact with electrodes; in contrast, traditional PNIs rely on insertion or placement of electrodes into or around existing nerves, or do not utilize materials to actively facilitate axon regeneration. This review presents the state-of-the-art of PNIs and nerve tissue engineering, highlights recent approaches to combine neural-interface technology and tissue engineering, and addresses the remaining challenges with foreign-body response.

摘要

从历史上看,神经接口的研究主要集中在大脑系统的开发上;然而,人们对周围神经接口(PNIs)的兴趣与日俱增,当周围神经功能受损时,如对截肢者而言,这种接口可能会带来益处。研究工作聚焦于设计可扩展且高性能的感觉和运动周围神经系统接口。当前的周围神经接口面临若干设计挑战,诸如来自数千条轴突的信号欠采样、神经纤维选择性以及设备与组织的整合等问题。为改进周围神经接口,一些研究人员已转向组织工程领域。周围神经组织工程专注于设计再生支架,这些支架要模仿正常神经细胞外基质的组成,提供先进的微观结构以刺激细胞迁移,并具备与天然神经相似的机械性能。通过将周围神经接口与组织工程相结合,目标是促进天然轴突向设备内再生,以便与电极紧密接触;相比之下,传统的周围神经接口依靠将电极插入现有神经内部或周围,或者不利用材料来积极促进轴突再生。本综述介绍了周围神经接口和神经组织工程的最新进展,重点阐述了将神经接口技术与组织工程相结合的最新方法,并探讨了异物反应方面仍然存在的挑战。

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Tissue-Engineered Peripheral Nerve Interfaces.组织工程化外周神经接口
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