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Cell-Based Multi-Parametric Model of Cleft Progression during Submandibular Salivary Gland Branching Morphogenesis

机译:下颌唾液腺分支形态发生过程中基于细胞的裂隙进展多参数模型

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摘要

Cleft formation during submandibular salivary gland branching morphogenesis is the critical step initiating the growth and development of the complex adult organ. Previous experimental studies indicated requirements for several epithelial cellular processes, such as proliferation, migration, cell-cell adhesion, cell-extracellular matrix (matrix) adhesion, and cellular contraction in cleft formation; however, the relative contribution of each of these processes is not fully understood since it is not possible to experimentally manipulate each factor independently. We present here a comprehensive analysis of several cellular parameters regulating cleft progression during branching morphogenesis in the epithelial tissue of an early embryonic salivary gland at a local scale using an on lattice Monte-Carlo simulation model, the Glazier-Graner-Hogeweg model. We utilized measurements from time-lapse images of mouse submandibular gland organ explants to construct a temporally and spatially relevant cell-based 2D model. Our model simulates the effect of cellular proliferation, actomyosin contractility, cell-cell and cell-matrix adhesions on cleft progression, and it was used to test specific hypotheses regarding the function of these parameters in branching morphogenesis. We use innovative features capturing several aspects of cleft morphology and quantitatively analyze clefts formed during functional modification of the cellular parameters. Our simulations predict that a low epithelial mitosis rate and moderate level of actomyosin contractility in the cleft cells promote cleft progression. Raising or lowering levels of contractility and mitosis rate resulted in non-progressive clefts. We also show that lowered cell-cell adhesion in the cleft region and increased cleft cell-matrix adhesions are required for cleft progression. Using a classifier-based analysis, the relative importance of these four contributing cellular factors for effective cleft progression was determined as follows: cleft cell contractility, cleft region cell-cell adhesion strength, epithelial cell mitosis rate, and cell-matrix adhesion strength.
机译:下颌唾液腺分支形态发生过程中的left裂形成是启动复杂成年器官生长和发育的关键步骤。先前的实验研究表明,对几种上皮细胞过程的要求,例如增殖,迁移,细胞间粘附,细胞-细胞外基质(基质)粘附以及裂隙形成中的细胞收缩。然而,由于不可能独立地实验性地操纵每个因素,所以还没有完全理解这些过程中每个过程的相对贡献。我们在这里介绍了使用格子蒙特卡洛模拟模型Glazier-Graner-Hogeweg模型在局部范围内对早期胚胎唾液腺的上皮组织中分支形态发生过程中调节裂隙进展的几种细胞参数进行的全面分析。我们利用小鼠下颌腺器官外植体的延时图像的测量值来构建基于时间和空间的基于细胞的二维模型。我们的模型模拟了细胞增殖,肌动球蛋白的收缩力,细胞与细胞和细胞基质的粘附对裂痕进展的影响,并用于检验关于这些参数在分支形态发生中功能的特定假设。我们使用创新的功能捕获裂缝形态的几个方面,并定量分析细胞参数的功能修改过程中形成的裂缝。我们的模拟预测,在裂隙细胞中低的上皮有丝分裂率和适度的放线菌素收缩性会促进裂隙进展。收缩力和有丝分裂率的升高或降低导致裂隙不进行。我们还显示,在裂隙区域,降低的细胞在裂隙区域的粘附和增加的裂隙对细胞基质的粘附是必需的。使用基于分类器的分析,确定了这四个促成细胞因子对有效裂隙进展的相对重要性,如下所述:裂隙细胞收缩性,裂隙区细胞间粘附强度,上皮细胞有丝分裂率和细胞基质粘附强度。

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