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首页> 外文期刊>The Journal of Comparative Neurology >Aberrant synaptic input to retinal ganglion cells varies with morphology in a mouse model of retinal degeneration.
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Aberrant synaptic input to retinal ganglion cells varies with morphology in a mouse model of retinal degeneration.

机译:在视网膜变性的小鼠模型中,向神经节细胞的异常突触输入随形态而变化。

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Retinal degeneration describes a group of disorders which lead to progressive photoreceptor cell death, resulting in blindness. As this occurs, retinal ganglion cells (RGCs) begin to develop oscillatory physiological activity. Here we studied the morphological and physiological properties of RGCs in rd1 mice, aged 30-60 days, to determine how this aberrant activity correlates with morphology. Patch-clamp recordings of excitatory and inhibitory currents were performed, then dendritic structures were visualized by infusion of fluorescent dye. Only RGCs with oscillatory activity were selected for further analysis. Oscillatory frequency and power were calculated using power spectral density analysis of recorded currents. Dendritic arbor stratification, total length, and area were measured from confocal microscope image stacks. These measurements were used to sort RGCs by cluster analysis using Ward's Method. This resulted in a total of 10 clusters, with monostratified and bistratified cells having five clusters each. Both populations exhibited correlations between arbor stratification and aberrant inhibitory input, while excitatory input did not vary with arbor distribution. These findings illustrate the relationship between aberrant activity and RGC morphology at early stages of retinal degeneration.
机译:视网膜变性描述了一组导致进行性感光细胞死亡,导致失明的疾病。发生这种情况时,视网膜神经节细胞(RGC)开始发展振荡的生理活性。在这里,我们研究了30-60天龄rd1小鼠中RGC的形态和生理特性,以确定这种异常活动与形态之间的关系。进行兴奋性和抑制性电流的膜片钳记录,然后通过注入荧光染料使树突结构可视化。仅选择具有振荡活动的RGC进行进一步分析。使用记录电流的功率谱密度分析计算振荡频率和功率。从共聚焦显微镜图像堆栈测量树突状乔木分层,总长度和面积。这些测量值用于使用Ward方法通过聚类分析对RGC进行分类。这导致总共10个簇,单分层和双分层细胞各有5个簇。两种种群均显示乔木分层与异常抑制输入之间的相关性,而兴奋输入与乔木分布无关。这些发现说明了视网膜变性早期异常活动与RGC形态之间的关系。

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