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Inner retinal preservation in rat models of retinal degeneration implanted with subretinal photovoltaic arrays

机译:植入视网膜下光伏阵列的视网膜变性大鼠模型中的视网膜内保存

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Photovoltaic arrays (PVA) implanted into the subretinal space of patients with retinitis pigmentosa (RP) are designed to electrically stimulate the remaining inner retinal circuitry in response to incident light, thereby recreating a visual signal when photoreceptor function declines or is lost. Preservation of inner retinal circuitry is critical to the fidelity of this transmitted signal to ganglion cells and beyond to higher visual targets. Post-implantation loss of retinal interneurons or excessive glial scarring could diminish and/or eliminate PVA-evoked signal transmission. As such, assessing the morphology of the inner retina in RP animal models with subretinal PVAs is an important step in defining biocompatibility and predicting success of signal transmission. In this study, we used immunohistochemical methods to qualitatively and quantitatively compare inner retinal morphology after the implantation of a PVA in two RP models: the Royal College of Surgeons (RCS) or transgenic S334ter-line 3 (S334ter-3) rhodopsin mutant rat. Two PVA designs were compared. In the RCS rat, we implanted devices in the subretinal space at 4 weeks of age and histologically examined them at 8 weeks of age and found inner retinal morphology preservation with both PVA devices. In the S334ter-3 rat, we implanted devices at 6-12 weeks of age and again, inner retinal morphology was generally preserved with either PVA design 16-26 weeks post-implantation. Specifically, the length of rod bipolar cells and numbers of cholinergic amacrine cells were maintained along with their characteristic inner plexiform lamination patterns. Throughout the implanted retinas we found nonspecific glial reaction, but none showed additional glial scarring at the implant site. Our results indicate that subretinally implanted PVAs are well-tolerated in rodent RP models and that the inner retinal circuitry is preserved, consistent with our published results showing implant-evoked signal transmission. Published by Elsevier Ltd.
机译:植入色素性视网膜炎(RP)患者视网膜下空间的光伏阵列(PVA)旨在响应入射光电刺激剩余的内部视网膜电路,从而在感光器功能下降或丧失时重建视觉信号。视网膜内部电路的保存对于这种传递到神经节细胞以及更高视觉目标的信号的保真度至关重要。植入后视网膜神经元丢失或神经胶质瘢痕过多可减少和/或消除PVA诱发的信号传递。因此,评估具有视网膜下PVA的RP动​​物模型中内部视网膜的形态是定义生物相容性和预测信号传输成功的重要步骤。在这项研究中,我们使用免疫组织化学方法定性和定量比较了两种RP模型中的PVA植入后的内部视网膜形态:皇家外科医生学院(RCS)或转基因S334ter-line 3(S334ter-3)视紫红质突变大鼠。比较了两种PVA设计。在RCS大鼠中,我们在4周龄时将器械植入视网膜下间隙,并在8周龄时进行了组织学检查,发现两种PVA器械均能保持内部视网膜形态。在S334ter-3大鼠中,我们在6至12周龄时植入了设备,并且再次在植入后16至26周采用PVA设计保留了内部视网膜形态。具体地,维持杆双极细胞的长度和胆碱能无长突细胞的数目以及它们的特征性内部丛状层压模式。在整个植入的视网膜中,我们发现了非特异性的神经胶质反应,但没有一个在植入部位显示出额外的神经胶质疤痕。我们的结果表明,在啮齿动物RP模型中视网膜下植入的PVA具有良好的耐受性,并且视网膜内部电路得以保留,这与我们发表的显示植入物诱发的信号传输的结果一致。由Elsevier Ltd.发布

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