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AxonQuant: A Microfluidic Chamber Culture-Coupled Algorithm That Allows High-Throughput Quantification of Axonal Damage

机译:AxonQuant:一种微流控室文化耦合算法允许高通量量化轴突损伤

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摘要

Published methods for imaging and quantitatively analyzing morphological changes in neuronal axons have serious limitations because of their small sample sizes, and their time-consuming and nonobjective nature. Here we present an improved microfluidic chamber design suitable for fast and high-throughput imaging of neuronal axons. We developed the Axon-Quant algorithm, which is suitable for automatic processing of axonal imaging data. This microfluidic chamber-coupled algorithm allows calculation of an ‘axonal continuity index’ that quantitatively measures axonal health status in a manner independent of neuronal or axonal density. This method allows quantitative analysis of axonal morphology in an automatic and nonbiased manner. Our method will facilitate large-scale high-throughput screening for genes or therapeutic compounds for neurodegenerative diseases involving axonal damage. When combined with imaging technologies utilizing different gene markers, this method will provide new insights into the mechanistic basis for axon degeneration. Our microfluidic chamber culture-coupled AxonQuant algorithm will be widely useful for studying axonal biology and neurodegenerative disorders.
机译:公开的成像方法和定量分析神经元轴突形态变化的方法由于其样本量小,耗时且非客观性质而受到严重限制。在这里,我们提出了一种改进的微流腔设计,适用于神经轴突的快速和高通量成像。我们开发了Axon-Quant算法,适用于自动处理轴突成像数据。这种微流体腔耦合算法允许计算“轴突连续性指数”,以独立于神经元或轴突密度的方式定量测量轴突健康状况。该方法允许以自动且无偏见的方式定量分析轴突形态。我们的方法将有助于大规模高通量筛选涉及轴突损伤的神经退行性疾病的基因或治疗化合物。当结合利用不同基因标记的成像技术时,这种方法将为轴突变性的机理基础提供新的见解。我们的微流体腔培养耦合AxonQuant算法将广泛用于研究轴突生物学和神经退行性疾病。

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