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Computational modelling of epidermal stratification highlights the importance of asymmetric cell division for predictable and robust layer formation

机译:表皮分层的计算模型凸显了不对称细胞分裂对于可预测和坚固层形成的重要性

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摘要

Skin is a complex organ tasked with, among other functions, protecting the body from the outside world. Its outermost protective layer, the epidermis, is comprised of multiple cell layers that are derived from a single-layered ectoderm during development. Using a new stochastic, multi-scale computational modelling framework, the anisotropic subcellular element method, we investigate the role of cell morphology and biophysical cell–cell interactions in the formation of this layered structure. This three-dimensional framework describes interactions between collections of hundreds to thousands of cells and (i) accounts for intracellular structure and morphology, (ii) easily incorporates complex cell–cell interactions and (iii) can be efficiently implemented on parallel architectures. We use this approach to construct a model of the developing epidermis that accounts for the internal polarity of ectodermal cells and their columnar morphology. Using this model, we show that cell detachment, which has been previously suggested to have a role in this process, leads to unpredictable, randomized stratification and that this cannot be abrogated by adjustment of cell–cell adhesion interaction strength. Polarized distribution of cell adhesion proteins, motivated by epithelial polarization, can however eliminate this detachment, and in conjunction with asymmetric cell division lead to robust and predictable development.
机译:皮肤是一个复杂的器官,除其他功能外,还具有保护身体不受外界干扰的功能。它的最外层保护层是表皮,由多个细胞层组成,这些细胞层在发育过程中源自单层外胚层。使用新的随机,多尺度计算建模框架,各向异性亚细胞元素方法,我们研究了细胞形态和生物物理细胞间相互作用在这种分层结构形成中的作用。这个三维框架描述了成百上千个细胞集合之间的相互作用,(i)解释了细胞内的结构和形态,(ii)轻松整合了复杂的细胞间相互作用,并且(iii)可以在并行架构上有效地实现。我们使用这种方法来构建表皮发育的模型,该模型考虑了外胚层细胞的内部极性及其柱状形态。使用该模型,我们证明了以前认为在此过程中起作用的细胞脱离会导致不可预测的随机分层,并且无法通过调节细胞间粘附力来消除这种脱离。然而,由上皮极化引起的细胞粘附蛋白的极化分布可以消除这种脱离,并与不对称细胞分裂相结合导致健壮且可预测的发展。

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