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用于模拟微加工神经探针周围组织阻抗变化的三维水凝胶培养物。

Three-dimensional hydrogel cultures for modeling changes in tissue impedance around microfabricated neural probes.

作者信息

Frampton J P, Hynd M R, Williams J C, Shuler M L, Shain W

机构信息

Department of Biomedical Sciences, School of Public Health, University at Albany, Albany, NY, USA.

出版信息

J Neural Eng. 2007 Dec;4(4):399-409. doi: 10.1088/1741-2560/4/4/006. Epub 2007 Nov 27.

Abstract

One limitation to the use of neuroprosthestic devices for chronic application, in the treatment of disease, is the reactive cell responses that occur surrounding the device after insertion. These cell and tissue responses result in increases in device impedance and failure of the device to interact with target populations of neurons. However, few tools are available to assess which components of the reactive response contribute most to changes in tissue impedance. An in vitro culture system has been developed that is capable of assessing individual components of the reactive response. The system utilizes alginate cell encapsulation to construct three-dimensional architectures that approach the cell densities found in rat cortex. The system was constructed around neuroNexus acute probes with on-board circuitry capable of monitoring the electrical properties of the surrounding tissue. This study demonstrates the utility of the system by demonstrating that differences in cell density within the three-dimensional alginate constructs result in differences in resistance and capacitance as measured by electrochemical impedance spectroscopy. We propose that this system can be used to model components of the reactive responses in brain tissue, and that the measurements recorded in vitro are comparable to measurements recorded in vivo.

摘要

在疾病治疗中,神经假体装置用于长期应用时存在一个限制,即装置插入后其周围会发生细胞反应。这些细胞和组织反应会导致装置阻抗增加,以及装置无法与目标神经元群体相互作用。然而,几乎没有工具可用于评估反应性反应的哪些成分对组织阻抗变化的影响最大。现已开发出一种体外培养系统,该系统能够评估反应性反应的各个成分。该系统利用藻酸盐细胞封装来构建三维结构,使其接近大鼠皮层中的细胞密度。该系统围绕带有能够监测周围组织电特性的板载电路的NeuroNexus急性探针构建。本研究通过证明三维藻酸盐构建体中细胞密度的差异会导致电化学阻抗谱测量的电阻和电容差异,展示了该系统的实用性。我们认为该系统可用于模拟脑组织中反应性反应的成分,并且体外记录的测量结果与体内记录的测量结果具有可比性。

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