论文标题

细胞外基质调节3D迁移癌细胞的形态动力学

Extracellular Matrix regulates the morphodynamics of 3D migrating cancer cells

论文作者

Eddy, Christopher Z., Raposo, Helena, Wong, Ryan, Sun, Bo

论文摘要

细胞形状与细胞功能有关。细胞形态动力学的意义,即细胞形状的时间波动,知之甚少。在这里,我们研究了I型胶原蛋白胶原外基质(ECM)中MDA-MB-231细胞的形态动力学。我们通过调整胶原蛋白浓度,比对和凝胶温度来系统地改变ECM物理性能。我们发现,3D迁移细胞的形态动力学由ECM力学外部控制,并通过Rho-Signaling进行内部调节。我们采用机器学习将细胞形状分类为四种不同的形态表型,每种形态表型与独特的迁移模式相对应。结果,我们将中尺度的细胞形态动力学映射到形态表型的时间演化中。我们表征了在不同的ECM条件下的中尺度动力学,包括发生概率,停留时间和过渡矩阵,这些矩阵证明了复杂的表型景观和表型转变的最佳途径。鉴于中尺度的动力学,我们表明3D癌细胞运动是一个隐藏的马尔可夫过程,通过该过程,细胞迁移的步长分布与同时的细胞形态动力学结合。我们还表明,形态表型过渡有助于癌细胞导航不均匀的ECM,例如遍历两个不同微观结构的矩阵之间的界面。总之,我们证明了3D迁移的癌细胞表现出丰富的形态动力学,受ECM力学,Rho-Signaling的调节,并且与细胞运动密切相关。我们的结果为正常和恶性细胞的细胞形态动力学的功能理解和机械编程铺平了道路。

Cell shape is linked to cell function. The significance of cell morphodynamics, namely the temporal fluctuation of cell shape, is much less understood. Here we study the morphodynamics of MDA-MB-231 cells in type I collagen extracellular matrix (ECM). We systematically vary ECM physical properties by tuning collagen concentrations, alignment, and gelation temperatures. We find that morphodynamics of 3D migrating cells are externally controlled by ECM mechanics and internally modulated by Rho-signaling. We employ machine learning to classify cell shape into four different morphological phenotypes, each corresponding to a distinct migration mode. As a result, we map cell morphodynamics at mesoscale into the temporal evolution of morphological phenotypes. We characterize the mesoscale dynamics including occurrence probability, dwell time and transition matrix at varying ECM conditions, which demonstrate the complex phenotype landscape and optimal pathways for phenotype transitions. In light of the mesoscale dynamics, we show that 3D cancer cell motility is a hidden Markov process whereby the step size distributions of cell migration are coupled with simultaneous cell morphodynamics. We also show that morphological phenotype transitions facilitate cancer cells to navigate non-uniform ECM such as traversing the interface between matrices of two distinct microstructures. In conclusion, we demonstrate that 3D migrating cancer cells exhibit rich morphodynamics that is regulated by ECM mechanics, Rho-signaling, and is closely related with cell motility. Our results pave the way to the functional understanding and mechanical programming of cell morphodynamics for normal and malignant cells.

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