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PNAS Plus: Modeling the two-way feedback between contractility and matrix realignment reveals a nonlinear mode of cancer cell invasion

机译:PNAS Plus:对收缩力和基质重排之间的双向反馈建模揭示了癌细胞入侵的非线性模式

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摘要

Cancer cell invasion from primary tumors is mediated by a complex interplay between cellular adhesions, actomyosin-driven contractility, and the physical characteristics of the extracellular matrix (ECM). Here, we incorporate a mechanochemical free-energy–based approach to elucidate how the two-way feedback loop between cell contractility (induced by the activity of chemomechanical interactions such as Ca2+ and Rho signaling pathways) and matrix fiber realignment and strain stiffening enables the cells to polarize and develop contractile forces to break free from the tumor spheroids and invade into the ECM. Interestingly, through this computational model, we are able to identify a critical stiffness that is required by the matrix to break intercellular adhesions and initiate cell invasion. Also, by considering the kinetics of the cell movement, our model predicts a biphasic invasiveness with respect to the stiffness of the matrix. These predictions are validated by analyzing the invasion of melanoma cells in collagen matrices of varying concentration. Our model also predicts a positive correlation between the elongated morphology of the invading cells and the alignment of fibers in the matrix, suggesting that cell polarization is directly proportional to the stiffness and alignment of the matrix. In contrast, cells in nonfibrous matrices are found to be rounded and not polarized, underscoring the key role played by the nonlinear mechanics of fibrous matrices. Importantly, our model shows that mechanical principles mediated by the contractility of the cells and the nonlinearity of the ECM behavior play a crucial role in determining the phenotype of the cell invasion.
机译:来自原发肿瘤的癌细胞入侵是由细胞粘附,肌动球蛋白驱动的收缩力和细胞外基质(ECM)的物理特性之间的复杂相互作用介导的。在这里,我们结合了一种基于机械化学自由能的方法,以阐明细胞收缩性(由化学机械相互作用的活性,如Ca 2 + 和Rho信号通路的诱导)之间的双向反馈回路。基质纤维的重新排列和应变硬化使细胞能够极化并产生收缩力,从而脱离肿瘤的球体并侵入ECM。有趣的是,通过该计算模型,我们能够确定基质破坏细胞间粘附并引发细胞侵袭所需的临界硬度。同样,通过考虑细胞运动的动力学,我们的模型可以预测相对于基质刚度的双相浸润性。通过分析不同浓度的胶原蛋白基质中黑色素瘤细胞的侵袭,可以验证这些预测。我们的模型还预测了入侵细胞的伸长形态与基质中纤维的排列之间存在正相关,这表明细胞极化与基质的刚度和排列成正比。相反,非纤维基质中的细胞被发现是圆形的而不是极化的,这突出了纤维基质的非线性力学所起的关键作用。重要的是,我们的模型表明,由细胞的收缩性和ECM行为的非线性介导的机械原理在确定细胞入侵的表型中起着至关重要的作用。

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