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Cells competition in tumor growth poroelasticity

机译:细胞竞争中的肿瘤生长多孔弹性

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Growth of biological tissues has been recently treated within the framework of Continuum Mechanics, by adopting heterogeneous poroelastic models where the interaction between soft matrix and interstitial fluid flow is coupled with inelastic effectsad hocintroduced to simulate the macroscopic volumetric growth determined by cells division, cells growth and extracellular matrix changes occurring at the micro-scale level. These continuum models seem to overcome some limitations intrinsically associated to other alternative approaches based on mass balances in multiphase systems, because the crucial role played by residual stresses accompanying growth and nutrients walkway is preserved. Nevertheless, when these strategies are applied to analyze solid tumors, mass growth is usually assigned in a prescribed form that essentially copies thein vitromeasured intrinsic growth rates of the cell species. As a consequence, some important cell-cell dynamics governing mass evolution and invasion rates of cancer cells, as well as their coupling with feedback mechanisms associated toin situstresses, are inevitably lost and thus the spatial distribution and the evolution with time of the growth inside the tumor –which would be results rather than inputs– are forced to enter in the model simply as data. In order to solve this paradox, it is here proposed an enhanced multi-scale poroelastic model undergoing large deformations and embodying inelastic growth, where the net growth terms directly result from the “interspecific” predator-prey (Volterra/Lotka-like) competition occurring at the micro-scale level between healthy and abnormal cell species. In this way, a system of fully-coupled non-linear PDEs is derived to describe how the fight among cell species to grab the available common resources, stress field, pressure gradients, interstitial fluid flows driving nutrients and inhomogeneous growth all simultaneously interact to decide the tumor fate.
机译:最近,在连续力学力学的框架内,通过采用非均质多孔弹性模型处理了生物组织的生长,在该模型中,软基质与间质液流之间的相互作用与非弹性效应相结合,并模拟了由细胞分裂,细胞生长和生长所决定的宏观体积生长。细胞外基质的变化发生在微观水平。这些连续模型似乎克服了与其他基于多相系统中质量平衡的替代方法固有的局限性,因为保留了伴随生长和养分走道的残余应力所起的关键作用。然而,当将这些策略应用于分析实体瘤时,通常以规定的形式分配质量生长,其基本上复制了体外测量的细胞物种的固有生长速率。结果,不可避免地失去了一些重要的细胞-细胞动力学,这些动力学控制着癌细胞的质量进化和侵袭率,以及它们与原位应力相关的反馈机制的耦合,因此空间分布和进化随着时间的推移而在癌细胞内部发生。肿瘤-可能是结果而不是输入-被迫简单地作为数据输入模型。为了解决这一矛盾,在此提出了一种经过增强的多尺度多孔弹性模型,该模型经历了大的变形并体现了非弹性增长,其中净增长项直接来自“种间”捕食者-猎物(沃尔泰拉/洛特卡样)竞争的产生。在健康细胞和异常细胞之间的微观水平上。通过这种方式,得出了一个全耦合的非线性PDE系统,以描述细胞物种之间如何争夺可利用的公共资源,应力场,压力梯度,驱动营养的组织液流动和不均匀生长的所有相互作用,同时决定肿瘤的命运。

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