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Epithelial tissue statistics: Eliminating bias reveals morphological and morphogenetic features

机译:上皮组织统计:消除偏倚可揭示形态和形态发生特征

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Geometric order in quasi-two-dimensional epithelia has been extensively researched in order to identify and classify different tissues to help our understanding of how tissues form (morphogenesis) and how their formation may be influenced (tissue regeneration). However, the significance of published data -such as the distribution of numbers of cell neighbors- has been debatable because of measurement bias. We shown that such bias can be detected and corrected without detailed knowledge of the original samples, using only the biased (measured) distributions. This is true for both of the most important sources of bias: the measurement of apparent four-fold vertices and the selective preference for measuring smaller cells introduced by selecting a finite sampling window. The resulting unbiased data allows for a meaningful comparison of all available data, from different sources, taken with different experimental resolution and methodology. Conclusive evidence is found that the apparent four-fold vertices are neither distributed randomly nor oriented randomly, revealing profound differences in topological correlation between proliferating and remodeling tissues. The method is applied to measurements of Drosophila wing tissue, where it successfully disentangles distributional moments, allowing for an assessment of their relative importance, independence, and significance in tissue identification and classification.
机译:为了识别和分类不同的组织,已经广泛研究了准二维上皮细胞的几何顺序,以帮助我们了解组织如何形成(形态发生)以及如何影响其形成(组织再生)。然而,由于测量偏差,已发表的数据的重要性(例如,细胞邻居数目的分布)尚有争议。我们表明,仅使用偏差(测量的)分布就可以检测和纠正这种偏差,而无需详细了解原始样本。对于两个最重要的偏差源都是如此:表观四重顶点的测量和通过选择有限采样窗口引入的用于选择较小单元的选择性偏好。所得的无偏数据可以对使用不同实验分辨率和方法得出的来自不同来源的所有可用数据进行有意义的比较。有确凿的证据表明,明显的四重顶点既不是随机分布的,也不是随机定向的,这表明增生和重塑组织之间的拓扑相关性存在深远差异。该方法用于果蝇翅组织的测量,可以成功地解开分布力矩,从而可以评估它们的相对重要性,独立性以及在组织识别和分类中的重要性。

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