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An individual-based model for collective cancer cell migration explains speed dynamics and phenotype variability in response to growth factors

机译:基于个体的集体癌细胞迁移模型解释了响应生长因子的速度动态和表型变异性

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摘要

Collective cell migration is a common phenotype in epithelial cancers, which is associated with tumor cell metastasis and poor patient survival. However, the interplay between physiologically relevant pro-migratory stimuli and the underlying mechanical cell–cell interactions are poorly understood. We investigated the migratory behavior of different collectively migrating non-small cell lung cancer cell lines in response to motogenic growth factors (e.g. epidermal growth factor) or clinically relevant small compound inhibitors. Depending on the treatment, we observed distinct behaviors in a classical lateral migration assay involving traveling fronts, finger-shapes or the development of cellular bridges. Particle image velocimetry analysis revealed characteristic speed dynamics (evolution of the average speed of all cells in a frame) in all experiments exhibiting initial acceleration and subsequent deceleration of the cell populations. To better understand the mechanical properties of individual cells leading to the observed speed dynamics and the phenotypic differences we developed a mathematical model based on a Langevin approach. This model describes intercellular forces, random motility, and stimulation of active migration by mechanical interaction between cells. Simulations show that the model is able to reproduce the characteristic spatio-temporal speed distributions as well as most migratory phenotypes of the studied cell lines. A specific strength of the proposed model is that it identifies a small set of mechanical features necessary to explain all phenotypic and dynamical features of the migratory response of non-small cell lung cancer cells to chemical stimulation/inhibition. Furthermore, all processes included in the model can be associated with potential molecular components, and are therefore amenable to experimental validation. Thus, the presented mathematical model may help to predict which mechanical aspects involved in non-small cell lung cancer cell migration are affected by the respective therapeutic treatment.
机译:集体细胞迁移是上皮癌的常见表型,其与肿瘤细胞转移和患者生存不良有关。然而,人们对生理相关的促迁移刺激与潜在的机械细胞间相互作用之间的相互作用了解甚少。我们调查了不同的集体迁移的非小细胞肺癌细胞系对运动发生生长因子(例如表皮生长因子)或临床相关的小化合物抑制剂的迁移行为。根据治疗的不同,我们在经典的侧向迁移分析中观察到了不同的行为,包括行进前沿,手指形状或细胞桥的发育。粒子图像测速分析显示了所有实验中的特征速度动力学(一帧中所有细胞的平均速度的演变),这些实验表现出细胞群的最初加速和随后的减速。为了更好地理解导致观察到的速度动态变化和表型差异的单个细胞的机械特性,我们开发了基于Langevin方法的数学模型。该模型描述了细胞间作用力,随机运动性以及通过细胞之间的机械相互作用刺激主动迁移。仿真表明,该模型能够重现所研究细胞系的特征时空速度分布以及大多数迁徙表型。提出的模型的特定优势在于,它识别出一小组机械特征,这些机械特征是解释非小细胞肺癌细胞对化学刺激/抑制的迁移反应的所有表型和动力学特征所必需的。此外,模型中包含的所有过程都可以与潜在的分子成分相关联,因此可以进行实验验证。因此,提出的数学模型可以帮助预测涉及非小细胞肺癌细胞迁移的哪些机械方面受到相应治疗方法的影响。

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