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PNAS Plus: Modeling and analysis of collective cell migration in an in vivo three-dimensional environment

机译:PNAS Plus:在体内三维环境中对集体细胞迁移进行建模和分析

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摘要

A long-standing question in collective cell migration has been what might be the relative advantage of forming a cluster over migrating individually. Does an increase in the size of a collectively migrating group of cells enable them to sample the chemical gradient over a greater distance because the difference between front and rear of a cluster would be greater than for single cells? We combined theoretical modeling with experiments to study collective migration of the border cells in-between nurse cells in the Drosophila egg chamber. We discovered that cluster size is positively correlated with migration speed, up to a particular point above which speed plummets. This may be due to the effect of viscous drag from surrounding nurse cells together with confinement of all of the cells within a stiff extracellular matrix. The model predicts no relationship between cluster size and velocity for cells moving on a flat surface, in contrast to movement within a 3D environment. Our analyses also suggest that the overall chemoattractant profile in the egg chamber is likely to be exponential, with the highest concentration in the oocyte. These findings provide insights into collective chemotaxis by combining theoretical modeling with experimentation.
机译:集体细胞迁移中一个长期存在的问题是,与单独迁移相比,形成集群可能具有哪些相对优势。集体迁移的细胞群大小的增加是否使它们能够在更大的距离上采样化学梯度,因为簇的前后差异将大于单个细胞?我们将理论模型与实验相结合,以研究果蝇卵室内护士细胞之间边界细胞的集体迁移。我们发现,簇的大小与迁移速度呈正相关,直到超过某个特定点时速度才急剧下降。这可能是由于来自周围护士细胞的粘性拖曳作用以及将所有细胞限制在刚性细胞外基质内的影响。与在3D环境中移动相比,该模型预测在平面上移动的单元的簇大小和速度之间没有关系。我们的分析还表明,卵腔中的整体趋化因子分布可能是指数的,卵母细胞中的浓度最高。这些发现通过将理论建模与实验相结合,为集体趋化性提供了见识。

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