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首页> 外文期刊>Molecular neurodegeneration >An automated image analysis method to measure regularity in biological patterns: a case study in a Drosophila neurodegenerative model
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An automated image analysis method to measure regularity in biological patterns: a case study in a Drosophila neurodegenerative model

机译:测量生物模式规律性的自动化图像分析方法:以果蝇神经变性模型为例

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The fruitfly compound eye has been broadly used as a model for neurodegenerative diseases. Classical quantitative techniques to estimate the degeneration level of an eye under certain experimental conditions rely either on time consuming histological techniques to measure retinal thickness, or pseudopupil visualization and manual counting. Alternatively, visual examination of the eye surface appearance gives only a qualitative approximation provided the observer is well-trained. Therefore, there is a need for a simplified and standardized analysis of fruitfly eye degeneration extent for both routine laboratory use and for automated high-throughput analysis. We have designed the freely available ImageJ plugin FLEYE, a novel and user-friendly method for quantitative unbiased evaluation of neurodegeneration levels based on the acquisition of fly eye surface pictures. The incorporation of automated image analysis tools and a classification algorithm sustained on a built-in statistical model allow the user to quickly analyze large sample size data with reliability and robustness. Pharmacological screenings or genetic studies using the Drosophila retina as a model system may benefit from our method, because it can be easily implemented in a fully automated environment. In addition, FLEYE can be trained to optimize the image detection capabilities, resulting in a versatile approach to evaluate the pattern regularity of other biological or non-biological samples and their experimental or pathological disruption.
机译:果蝇复眼已被广泛用作神经退行性疾病的模型。在某些实验条件下,估计眼睛退化程度的经典定量技术依赖于耗时的组织学技术来测量视网膜厚度,或依靠假瞳可视化和手动计数。另外,如果观察者训练有素,则对眼睛表面外观的目视检查只能给出定性的近似值。因此,需要常规实验室使用和自动化高通量分析的果蝇眼退化程度的简化和标准化分析。我们设计了免费提供的ImageJ插件FLEYE,这是一种新颖且用户友好的方法,可基于对蝇眼表面图像的采集来定量评估神经变性水平的无偏性。自动图像分析工具和内置在统计模型上的分类算法的结合使用户可以快速,可靠和鲁棒地分析大样本数据。使用果蝇视网膜作为模型系统的药理学筛选或基因研究可能会受益于我们的方法,因为它可以在全自动环境中轻松实现。此外,可以对FLEYE进行培训以优化图像检测功能,从而获得一种通用的方法来评估其他生物或非生物样本的图案规律性以及它们的实验或病理破坏。

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