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Dynamic Modeling of Cell Migration and Spreading Behaviors on Fibronectin Coated Planar Substrates and Micropatterned Geometries

机译:纤连蛋白涂层的平面基底和微图案几何上细胞迁移和扩散行为的动态建模

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An integrative cell migration model incorporating focal adhesion (FA) dynamics, cytoskeleton and nucleus remodeling, actin motor activity, and lamellipodia protrusion is developed for predicting cell spreading and migration behaviors. This work is motivated by two experimental works: (1) cell migration on 2-D substrates under various fibronectin concentrations and (2) cell spreading on 2-D micropatterned geometries. These works suggest (1) cell migration speed takes a maximum at a particular ligand density (~1140 molecules/μm2) and (2) that strong traction forces at the corners of the patterns may exist due to combined effects exerted by actin stress fibers (SFs). The integrative model of this paper successfully reproduced these experimental results and indicates the mechanism of cell migration and spreading. In this paper, the mechanical structure of the cell is modeled as having two elastic membranes: an outer cell membrane and an inner nuclear membrane. The two elastic membranes are connected by SFs, which are extended from focal adhesions on the cortical surface to the nuclear membrane. In addition, the model also includes ventral SFs bridging two focal adhesions on the cell surface. The cell deforms and gains traction as transmembrane integrins distributed over the outer cell membrane bond to ligands on the ECM surface, activate SFs, and form focal adhesions. The relationship between the cell migration speed and fibronectin concentration agrees with existing experimental data for Chinese hamster ovary (CHO) cell migrations on fibronectin coated surfaces. In addition, the integrated model is validated by showing persistent high stress concentrations at sharp geometrically patterned edges. This model will be used as a predictive model to assist in design and data processing of upcoming microfluidic cell migration assays.
机译:建立了整合细胞迁移模型,该模型结合了粘着斑(FA)动力学,细胞骨架和细胞核重塑,肌动蛋白运动活性以及片状脂膜突出,用于预测细胞扩散和迁移行为。这项工作受到两项实验工作的推动:(1)细胞在各种纤连蛋白浓度下在2-D底物上迁移,以及(2)在二维微图案化几何结构上的细胞扩散。这些工作表明(1)在特定的配体密度(〜1140分子/μm2)下,细胞迁移速度达到最大值,并且(2)由于肌动蛋白应力纤维所产生的综合效应,图案的四角可能存在强大的牵引力( SFs)。本文的整合模型成功地再现了这些实验结果,并指出了细胞迁移和扩散的机制。在本文中,细胞的机械结构被建模为具有两个弹性膜:外部细胞膜和内部核膜。这两个弹性膜通过SF连接,这些SF从皮质表面的粘着斑延伸到核膜。此外,该模型还包括腹侧SF,桥接了细胞表面的两个粘着斑。当跨膜整联蛋白分布在细胞外膜上时,细胞变形并获得牵引力,从而与ECM表面的配体结合,激活SF,并形成粘着斑。细胞迁移速度和纤连蛋白浓度之间的关系与纤毛蛋白包被表面上中国仓鼠卵巢(CHO)细胞迁移的现有实验数据一致。另外,通过在尖锐的几何图案边缘显示持续的高应力集中来验证集成模型。该模型将用作预测模型,以协助即将进行的微流体细胞迁移分析的设计和数据处理。

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