Investigation of Insertion Method to Achieve Chronic Recording Stability of a Semi-Rigid Implantable Neural Probe

M. Cavuto, T. Constandinou
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引用次数: 1

Abstract

Brain machine interfaces notoriously face difficulties in achieving long term implanted recording stability. It has been shown that damage and inflammation, caused during insertion by electrodes that are too large and stiff, provoke a sustained inflammatory tissue response. This is commonly referred to as the foreign body response, resulting in encapsulation and thus increased electrode impedance over time. Accordingly, neural interfaces with ever smaller and more flexible electrodes are continually in development, but unfortunately face challenges of their own, first and foremost of which is buckling and bending during insertion. This work presents the development of a prototype insertion method, comprising an insertion device and novel probe architecture, that promotes straight insertion without buckling, while simultaneously minimizing the insertion force for multi-microwire electrode probes. When compared against insertion of probes with unsupported free electrodes, the prototype method achieved significantly straighter electrode insertion, resulting in both a smaller distance between electrode recording tips and a greater average insertion depth. While achieving less straight insertion than probes with sucrose coated electrodes, a common technique for promoting reliable insertion without buckling, the tested method was able to maintain significantly lower insertion forces.
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实现半刚性植入式神经探针长期记录稳定性的插入方法研究
众所周知,脑机接口在实现长期植入记录稳定性方面面临困难。研究表明,在插入过程中,过大和太硬的电极会引起损伤和炎症,引发持续的炎症组织反应。这通常被称为异物反应,导致封装,从而随着时间的推移增加电极阻抗。因此,具有更小、更灵活电极的神经接口正在不断发展,但不幸的是,它们面临着自己的挑战,首先也是最重要的挑战是插入时的屈曲和弯曲。这项工作提出了一种原型插入方法的发展,包括插入装置和新型探针结构,可以促进直插入而不会屈曲,同时最大限度地减少多微线电极探针的插入力。与无支撑的自由电极插入探针相比,原型方法实现了更直的电极插入,从而使电极记录尖端之间的距离更小,平均插入深度更大。与使用蔗糖涂层电极的探针相比,该方法的直插性要差一些,这是一种促进可靠插入而不发生屈曲的常用技术,但测试方法能够保持明显较低的插入力。
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