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大鼠坐骨神经对平面界面神经电极的慢性反应。

Chronic response of the rat sciatic nerve to the flat interface nerve electrode.

作者信息

Tyler Dustin J, Durand Dominique M

机构信息

Applied Neural Control Laboratory, Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH 44106, USA.

出版信息

Ann Biomed Eng. 2003 Jun;31(6):633-42. doi: 10.1114/1.1569263.

Abstract

The chronic effects of a reshaping nerve electrode, the flat interface nerve electrode (FINE), on sciatic nerve physiology, histology, and blood-nerve barrier (BNB) are presented. The FINE electrode applies a small force to a nerve to reshape the nerve and fascicles into elongated ovals. This increases the interface between the nerve and electrode for selective stimulation and recording of peripheral nerve activity. The hypothesis of this study is that a small force applied noncircumferentially to a nerve can chronically reshape the nerve without effecting nerve physiology, histology, or the blood-nerve barrier permeability. Three FINE electrode designs were implanted on rat sciatic nerves to examine the nerve's response to small, moderate, and high reshaping forces. The chronic reshaping, physiology, and histology of the nerve were examined at 1, 7, and 28 days postimplant. All FINEs significantly reshape both the nerve and the fascicles compared to controls. FINEs that applied high forces caused a neurapraxia type injury characterized by changes in the animal's footprint, nerve histology, and the BNB permeability. The physiological changes were greatest at 7 days and fully recover to normal by 14 days postimplant. The moderate force FINE did not result in changes in the footprint or BNB permeability. Only a minor decrease in axon density without accompanying evidence of axon demyelination or regeneration was observe for the moderate force. The small force FINE does not cause any change in nerve physiology, histology, or BNB permeability compared to the sham treatment. An electrode that applies a small force that results in an estimated intrafascicular pressure of less than 30 mm Hg can reshape the nerve without significant changes in the nerve physiology or histology. These results support the conclusion that a small force chronically applied to the nerve reshapes the nerve without injury.

摘要

本文介绍了一种重塑神经电极——扁平界面神经电极(FINE)对坐骨神经生理学、组织学和血神经屏障(BNB)的慢性影响。FINE电极对神经施加微小力量,将神经和束状结构重塑为细长的椭圆形。这增加了神经与电极之间的界面,以便选择性地刺激和记录周围神经活动。本研究的假设是,非周向施加于神经的微小力量可长期重塑神经,而不影响神经生理学、组织学或血神经屏障通透性。将三种FINE电极设计植入大鼠坐骨神经,以研究神经对小、中、高重塑力的反应。在植入后1天、7天和28天检查神经的慢性重塑、生理学和组织学情况。与对照组相比,所有FINE均能显著重塑神经和束状结构。施加高力量的FINE导致一种神经失用型损伤,其特征为动物足迹、神经组织学和BNB通透性发生变化。生理变化在7天时最为明显,植入后14天完全恢复正常。中等力量的FINE未导致足迹或BNB通透性发生变化。对于中等力量,仅观察到轴突密度略有下降,且无轴突脱髓鞘或再生的伴随证据。与假手术治疗相比,小力量FINE不会引起神经生理学、组织学或BNB通透性的任何变化。施加微小力量导致估计束内压力小于30 mmHg的电极可重塑神经,而不会引起神经生理学或组织学的显著变化。这些结果支持以下结论:长期施加于神经的微小力量可重塑神经而不造成损伤。

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