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Quantitative analysis of colony morphology in yeast

机译:酵母菌落形态的定量分析

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摘要

Microorganisms often form multicellular structures such as biofilms and structured colonies that can influence the organism's virulence, drug resistance, and adherence to medical devices. Phenotypic classification of these structures has traditionally relied on qualitative scoring systems that limit detailed phenotypic comparisons between strains. Automated imaging and quantitative analysis have the potential to improve the speed and accuracy of experiments designed to study the genetic and molecular networks underlying different morphological traits. For this reason, we have developed a platform that uses automated image analysis and pattern recognition to quantify phenotypic signatures of yeast colonies. Our strategy enables quantitative analysis of individual colonies, measured at a single time point or over a series of time-lapse images, as well as the classification of distinct colony shapes based on image-derived features. Phenotypic changes in colony morphology can be expressed as changes in feature space trajectories over time, thereby enabling the visualization and quantitative analysis of morphological development. To facilitate data exploration, results are plotted dynamically through an interactive Yeast Image Analysis web application (YIMAA; http://yimaa.cs.tut.fi) that integrates the raw and processed images across all time points, allowing exploration of the image-based features and principal components associated with morphological development.
机译:微生物通常会形成多细胞结构,例如生物膜和结构化菌落,它们会影响生物体的毒力,耐药性以及对医疗设备的依从性。这些结构的表型分类传统上依赖于定性评分系统,该系统限制了菌株之间详细的表型比较。自动化的成像和定量分析有可能提高设计用于研究基于不同形态特征的遗传和分子网络的实验的速度和准确性。因此,我们开发了一个平台,该平台使用自动图像分析和模式识别来量化酵母菌落的表型特征。我们的策略可以对单个菌落进行定量分析(在单个时间点或一系列延时图像上进行测量),以及基于图像衍生特征对不同菌落形状进行分类。菌落形态的表型变化可以表示为特征空间轨迹随时间的变化,从而可以对形态发展进行可视化和定量分析。为了促进数据探索,通过交互式酵母图像分析Web应用程序(YIMAA; http://yimaa.cs.tut.fi)动态绘制结果,该应用程序将所有时间点的原始图像和经过处理的图像集成在一起,从而可以对图像进行探索,与形态发展有关的特征和主要成分。

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