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In silico approach to quantify nucleus self-deformation on micropillared substrates

机译:在硅方法中量化微细基板上的核自变形

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Considering the major role of confined cell migration in biological processes and diseases, such as embryogenesis or metastatic cancer, it has become increasingly important to design relevant experimental set-ups for in vitro studies. Microfluidic devices have recently presented great opportunities in their respect since they offer the possibility to study all the steps from a suspended to a spread, and eventually crawling cell or a cell with highly deformed nucleus. Here, we focus on the nucleus self-deformation over a micropillared substrate. Actin networks have been observed at two locations in this set-up: above the nucleus, forming the perinuclear actin cap (PAC), and below the nucleus, surrounding the pillars. We can then wonder which of these contractile networks is responsible for nuclear deformation. The cytoplasm and the nucleus are represented through the superposition of a viscous and a hyperelastic material and follow a series of processes. First, the suspended cell settles on the pillars due to gravity. Second, an adhesive spreading force comes into play, and then, active deformations contract one or both actin domains and consequently the nucleus. Our model is first tested on a flat substrate to validate its global behaviour before being confronted to a micropillared substrate. Overall, the nucleus appears to be mostly pulled towards the pillars, while the mechanical action of the PAC is weak. Eventually, we test the influence of gravity and prove that the gravitational force does not play a role in the final deformation of the nucleus.
机译:考虑到狭窄的细胞迁移在生物过程和疾病中的主要作用,例如胚胎发生或转移性癌症,对设计相关实验组进行体外研究越来越重要。微流体器件最近在尊重方面呈现了很大的机会,因为它们提供了从悬浮在涂抹的所有步骤以及最终爬行细胞或具有高度变形的细胞核的细胞中研究所有步骤的可能性。这里,我们专注于微储物基材上的核自变形。在该设置中的两个位置观察到肌动蛋白网络:在核上方,形成PerinucleclectOc肌动蛋白帽(PAC),围绕柱的细胞核。然后我们可以奇异于哪些合约网络负责核变形。细胞质和细胞核通过粘性和高速材料的叠加来表示,并遵循一系列过程。首先,悬浮电池由于重力而沉积在柱上。其次,粘合剂扩散力进入发挥作用,然后,活性变形收缩一个或两种肌动蛋白结构域并因此核。我们的模型首先在扁平基板上进行测试,以验证其全局行为,然后面对微生物基底。总的来说,核似乎大多朝着柱子拉动,而PAC的机械作用较弱。最终,我们测试重力的影响并证明引力在核的最终变形中不起作用。

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