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3D Shape Modeling for Cell Nuclear Morphological Analysis and Classification

机译:用于细胞核形态分析和分类的3D形状建模

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摘要

Quantitative analysis of morphological changes in a cell nucleus is important for the understanding of nuclear architecture and its relationship with pathological conditions such as cancer. However, dimensionality of imaging data, together with a great variability of nuclear shapes, presents challenges for 3D morphological analysis. Thus, there is a compelling need for robust 3D nuclear morphometric techniques to carry out population-wide analysis. We propose a new approach that combines modeling, analysis, and interpretation of morphometric characteristics of cell nuclei and nucleoli in 3D. We used robust surface reconstruction that allows accurate approximation of 3D object boundary. Then, we computed geometric morphological measures characterizing the form of cell nuclei and nucleoli. Using these features, we compared over 450 nuclei with about 1,000 nucleoli of epithelial and mesenchymal prostate cancer cells, as well as 1,000 nuclei with over 2,000 nucleoli from serum-starved and proliferating fibroblast cells. Classification of sets of 9 and 15 cells achieved accuracy of 95.4% and 98%, respectively, for prostate cancer cells, and 95% and 98% for fibroblast cells. To our knowledge, this is the first attempt to combine these methods for 3D nuclear shape modeling and morphometry into a highly parallel pipeline workflow for morphometric analysis of thousands of nuclei and nucleoli in 3D.
机译:定量分析细胞核中的形态变化对于理解核结构及其与病理状况(例如癌症)的关系非常重要。但是,成像数据的维数以及核形状的巨大变异性为3D形态分析提出了挑战。因此,迫切需要强大的3D核形态计量技术来进行总体分析。我们提出了一种结合了3D中细胞核和核仁形态特征的建模,分析和解释的新方法。我们使用了鲁棒的表面重构,可以精确逼近3D对象边界。然后,我们计算了表征细胞核和核仁形式的几何形态学度量。使用这些功能,我们比较了上皮和间质前列腺癌细胞的450多个核与约1000个核仁,以及血清饥饿和增殖性成纤维细胞的1000个核与2000多个核仁。 9组和15组细胞的分类对于前列腺癌细胞的准确率分别为95.4%和98%,对于成纤维细胞的准确率分别为95%和98%。据我们所知,这是首次尝试将这些用于3D核形状建模和形态计量的方法结合到高度并行的流水线工作流程中,以对3D中成千上万个核和核仁进行形态计量分析。

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