Division of Nephrology, Department of Medicine, Indiana University School of Medicine, Indianapolis, Indiana; Department of Anatomy, Cell Biology and Physiology, Indiana University School of Medicine, Indianapolis, Indiana; Department of Pathology and Microbiology, University of Nebraska Medical Center, Omaha, Nebraska.
Division of Nephrology, Department of Medicine, Indiana University School of Medicine, Indianapolis, Indiana.
Lab Invest. 2023 Jun;103(6):100104. doi: 10.1016/j.labinv.2023.100104. Epub 2023 Feb 4.
The human kidney is a complex organ with various cell types that are intricately organized to perform key physiological functions and maintain homeostasis. New imaging modalities, such as mesoscale and highly multiplexed fluorescence microscopy, are increasingly being applied to human kidney tissue to create single-cell resolution data sets that are both spatially large and multidimensional. These single-cell resolution high-content imaging data sets have great potential to uncover the complex spatial organization and cellular makeup of the human kidney. Tissue cytometry is a novel approach used for the quantitative analysis of imaging data; however, the scale and complexity of such data sets pose unique challenges for processing and analysis. We have developed the Volumetric Tissue Exploration and Analysis (VTEA) software, a unique tool that integrates image processing, segmentation, and interactive cytometry analysis into a single framework on desktop computers. Supported by an extensible and open-source framework, VTEA's integrated pipeline now includes enhanced analytical tools, such as machine learning, data visualization, and neighborhood analyses, for hyperdimensional large-scale imaging data sets. These novel capabilities enable the analysis of mesoscale 2- and 3-dimensional multiplexed human kidney imaging data sets (such as co-detection by indexing and 3-dimensional confocal multiplexed fluorescence imaging). We demonstrate the utility of this approach in identifying cell subtypes in the kidney on the basis of labels, spatial association, and their microenvironment or neighborhood membership. VTEA provides an integrated and intuitive approach to decipher the cellular and spatial complexity of the human kidney and complements other transcriptomics and epigenetic efforts to define the landscape of kidney cell types.
人类肾脏是一个复杂的器官,包含各种细胞类型,这些细胞类型错综复杂地组织在一起,以执行关键的生理功能并维持体内平衡。新的成像模式,如介观和高度多重荧光显微镜,越来越多地应用于人类肾脏组织,以创建具有大空间和多维的单细胞分辨率数据集。这些单细胞分辨率的高内涵成像数据集具有揭示人类肾脏复杂空间组织和细胞构成的巨大潜力。组织细胞计量学是一种用于定量分析成像数据的新方法;然而,这些数据集的规模和复杂性为处理和分析带来了独特的挑战。我们开发了 Volume Tissue Exploration and Analysis(VTEA)软件,这是一种独特的工具,它将图像处理、分割和交互式细胞计量分析集成到桌面计算机上的单个框架中。VTEA 的集成管道得到了可扩展和开源框架的支持,现在包括增强的分析工具,如机器学习、数据可视化和邻域分析,用于超维大规模成像数据集。这些新功能使分析二维和三维多重化的人类肾脏成像数据集(例如,通过索引和三维共聚焦多重化荧光成像进行共同检测)成为可能。我们展示了这种方法在基于标签、空间关联及其微环境或邻域成员识别肾脏细胞亚型方面的实用性。VTEA 提供了一种综合直观的方法来解析人类肾脏的细胞和空间复杂性,并补充了其他转录组学和表观遗传学工作,以定义肾脏细胞类型的景观。