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3D computational reconstruction of tissues with hollow spherical morphologies using single-cell gene expression data

机译:使用单细胞基因表达数据对具有空心球形形态的组织进行3D计算重建

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Single-cell gene expression analysis has contributed to a better understanding of the transcriptional heterogeneity in a variety of model systems, including those used in research in developmental, cancer and stem cell biology. Nowadays, technological advances facilitate the generation of large gene expression data sets in high-throughput format. Strategies are needed to pertinently visualize this information in a tissue structure-related context, so as to improve data analysis and aid the drawing of meaningful conclusions. Here we describe an approach that uses spatial properties of the tissue source to enable the reconstruction of hollow sphere-shaped tissues and organs from single-cell gene expression data in 3D space. To demonstrate our method, we used cells of the mouse otocyst and the renal vesicle as examples. This protocol presents a straightforward computational expression analysis workflow, and it is implemented on the MATLAB and R statistical computing and graphics software platforms. Hands-on time for typical experiments can be <1 h using a standard desktop PC or Mac.
机译:单细胞基因表达分析有助于更好地理解各种模型系统中的转录异质性,包括用于发育,癌症和干细胞生物学研究中的模型。如今,技术进步促进了以高通量格式生成大型基因表达数据集。需要采取策略在与组织结构相关的上下文中可视化此信息,以改善数据分析并帮助得出有意义的结论。在这里,我们描述了一种利用组织源的空间特性来从3D空间中的单细胞基因表达数据重建空心球形组织和器官的方法。为了证明我们的方法,我们以小鼠耳囊和肾小泡的细胞为例。该协议提供了一个简单的计算表达式分析工作流,并在MATLAB和R统计计算和图形软件平台上实现。使用标准台式PC或Mac,典型实验的动手时间可以少于1小时。

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