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Computational method for calculating fluorescence intensities within three-dimensional structures in cells

机译:计算细胞三维结构内荧光强度的计算方法

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摘要

The use of fluorescence microscopy is central to cell biology in general, and essential to many fields (e.g., membrane traffic) that rely upon it to identify cellular locations of molecules under study and the extent to which they co-localize with others. Rigorous localization or co-localization data require quantitative image analyses that can vary widely between fields and laboratories. While most published data use two-dimensional images, there is an increasing appreciation for the advantages of collecting three-dimensional data sets. These include the ability to evaluate the entire cell and avoidance of focal plane bias. This is particularly important when imaging and quantifying changes in organelles with irregular borders and which vary in appearance between cells in a population, e.g., the Golgi. We describe a method developed for quantifying changes in signal intensity of one protein within any three-dimensional structure, defined by the presence of a different marker. We use as examples of this method the quantification of adaptor recruitment to transmembrane protein cargos at the Golgi though it can be directly applied to any site in the cell. Together, these advantages facilitate rigorous statistical testing of differences between conditions, despite variations in organelle structure, and we believe that this method of quantification of fluorescence data can be productively applied to a wide array of experimental questions.
机译:荧光显微镜的使用通常是细胞生物学的中心,对于依赖于它来鉴定所研究分子的细胞位置以及它们与其他分子的共定位程度的许多领域(例如膜运输)至关重要。严格的本地化或共本地化数据需要定量的图像分析,这些图像分析在不同领域和实验室之间可能存在很大差异。尽管大多数已发布的数据使用二维图像,但人们越来越意识到收集三维数据集的优势。这些包括评估整个单元的能力以及避免焦平面偏差的能力。当对具有不规则边界的细胞器的变化进行成像和定量并且在群体(例如高尔基体)中的细胞之间的外观变化时,这特别重要。我们描述了一种用于量化由不同标记物的存在定义的任何三维结构内的一种蛋白质的信号强度变化的方法。尽管可以将其直接应用于细胞中的任何位点,但我们以这种适配器为例,对高尔基州跨膜蛋白货物的衔接子募集进行了定量。总之,尽管细胞器结构有所变化,但这些优点有助于对条件之间的差异进行严格的统计测试,我们相信这种荧光数据定量方法可以有效地应用于各种各样的实验问题。

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