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Three-dimensional electrode arrays for retinal prostheses: modeling, geometry optimization and experimental validation

机译:视网膜假体的三维电极阵列:建模,几何优化和实验验证

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摘要

Three-dimensional electrode geometries were proposed to increase the spatial resolution in retinal prostheses aiming at restoring vision in blind patients. We report here the results from a study in which finite-element modeling was used to design and optimize three-dimensional electrode geometries. Proposed implants exhibit an array of well-like shapes containing stimulating electrodes at their bottom, while the common return grid electrode surrounds each well on the implant top surface. Extending stimulating electrodes and/or the grid return electrode on the walls of the cavities was also considered. The goal of the optimization was to find model parameters that maximize the focalization of electrical stimulation, and therefore the spatial resolution of the electrode array. The results showed that electrode geometries with a well depth of 30 μm yield a tenfold increase in selectivity compared to the planar structures of similar electrode dimensions. Electrode array prototypes were microfabricated and implanted in dystrophic rats to determine if the tissue would behave as hypothesized in the model. Histological examination showed that retinal bipolar cells integrate the electrode well, creating isolated cell clusters. The modeling analysis showed that the stimulation current is confounded within the electrode well, leading to selective electrical stimulation of the individual bipolar cell clusters and thereby to electrode arrays with higher spatial resolution.
机译:提出了三维电极几何形状,以提高视网膜假体的空间分辨率,旨在恢复盲人的视力。我们在这里报告一项研究的结果,在该研究中,使用有限元建模来设计和优化三维电极几何形状。拟议的植入物呈现出井字形阵列,其底部包含刺激电极,而共用的返回网格电极围绕着植入物顶面上的每个孔。还考虑了在空腔壁上延伸刺激电极和/或栅极返回电极。优化的目的是找到使电刺激的聚焦最大化并因此使电极阵列的空间分辨率最大化的模型参数。结果表明,与类似电极尺寸的平面结构相比,孔深度为30μm的电极几何形状的选择性提高了十倍。将电极阵列的原型进行微细加工,然后植入营养不良的大鼠中,以确定组织在模型中的表现是否符合假设。组织学检查表明,视网膜双极细胞很好地整合了电极,形成了孤立的细胞簇。建模分析表明,刺激电流在电极孔内混杂,导致对单个双极细胞簇的选择性电刺激,从而产生具有更高空间分辨率的电极阵列。

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  • 来源
    《Journal of neural engineering》 |2011年第4期|p.046020.1-046020.9|共9页
  • 作者单位

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France;

    ESIEE, Universite Paris Est, Noisy le Grand, France;

    ESIEE, Universite Paris Est, Noisy le Grand, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France,ISIR, Universite Pierre et Marie Curie, Paris, France;

    ISIR, Universite Pierre et Marie Curie, Paris, France;

    Centre National de la Recherche Scientifique, INCIA, UMR5287, Bordeaux, France,Universite de Bordeaux, INCIA, UMR5287, Bordeaux, France;

    Centre National de la Recherche Scientifique, INCIA, UMR5287, Bordeaux, France,Universite de Bordeaux, INCIA, UMR5287, Bordeaux, France;

    CEA, LIST, Diamond Sensors Laboratory, Gif-sur-Yvette, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France,Centre Hospitalier National d'Ophtalmologie des Quinze-Vingts, Paris, France,Institute of Ophthalmology, University College London, London, UK,Fondation Ophtalmologique Adolphe de Rothschild, Paris, France;

    INSERM, U968, Institut de la Vision, Paris, France,Institut de la Vision, UPMC Universite Paris 6, UMR_S968, Paris, France,CNRS, UMR 7210, Institut de la Vision, Paris, France,Fondation Ophtalmologique Adolphe de Rothschild, Paris, France;

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