A simple implantation method for flexible, multisite microelectrodes into rat brains.

Frontiers in neuroengineering Pub Date : 2013-07-24 eCollection Date: 2013-01-01 DOI:10.3389/fneng.2013.00006
Anja Richter, Yijing Xie, Anett Schumacher, Susanne Löffler, Robert D Kirch, Jaafar Al-Hasani, Daniel H Rapoport, Charli Kruse, Andreas Moser, Volker Tronnier, Sandra Danner, Ulrich G Hofmann
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引用次数: 47

Abstract

A long term functional and reliable coupling between neural tissue and implanted microelectrodes is the key issue in acquiring neural electrophysiological signals or therapeutically excite neural tissue. The currently often used rigid micro-electrodes are thought to cause a severe foreign body reaction resulting in a thick glial scar and consequently a poor tissue-electrode coupling in the chronic phase. We hypothesize, that this adverse effect might be remedied by probes compliant to the soft brain tissue, i.e., replacing rigid electrodes by flexible ones. Unfortunately, this flexibility comes at the price of a low stiffness, which makes targeted low trauma implantation very challenging. In this study, we demonstrate an adaptable and simple method to implant extremely flexible microprobes even to deep areas of rat's brain. Implantation of flexible probes is achieved by rod supported stereotactic insertion fostered by a hydrogel (2% agarose in PBS) cushion on the exposed skull. We were thus able to implant very flexible micro-probes in 70 rats as deep as the rodent's subthalamic nucleus. This work describes in detail the procedures and steps needed for minimal invasive, but reliable implantation of flexible probes.

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一种简单的将柔性多位点微电极植入大鼠大脑的方法。
神经组织与植入的微电极之间长期功能可靠的耦合是获取神经电生理信号或治疗性兴奋神经组织的关键问题。目前经常使用的刚性微电极被认为会引起严重的异物反应,导致较厚的胶质瘢痕,从而导致慢性期组织-电极耦合不良。我们假设,这种不利影响可能会通过适应软脑组织的探针来弥补,即用柔性电极代替刚性电极。不幸的是,这种灵活性是以低刚度为代价的,这使得有针对性的低创伤植入非常具有挑战性。在这项研究中,我们展示了一种适应性强且简单的方法,可以将非常灵活的微探针植入大鼠的大脑深处。柔性探针的植入是通过在暴露的颅骨上用水凝胶(2%琼脂糖PBS)垫培养的杆支撑立体定向插入来实现的。因此,我们能够在70只大鼠体内植入非常灵活的微型探针,其深度与啮齿动物的丘脑下核一样深。这项工作详细描述了微创但可靠的柔性探针植入所需的程序和步骤。
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