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Energetic costs regulated by cell mechanics and confinement are predictive of migration path during decision-making

机译:由细胞力学和约束力控制的高能成本可预测决策过程中的迁移路径

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摘要

Cell migration during the invasion-metastasis cascade requires cancer cells to navigate a spatially complex microenvironment that presents directional choices to migrating cells. Here, we investigate cellular energetics during migration decision-making in confined spaces. Theoretical and experimental data show that energetic costs for migration through confined spaces are mediated by a balance between cell and matrix compliance as well as the degree of spatial confinement to direct decision-making. Energetic costs, driven by the cellular work needed to generate force for matrix displacement, increase with increasing cell stiffness, matrix stiffness, and degree of spatial confinement, limiting migration. By assessing energetic costs between possible migration paths, we can predict the probability of migration choice. Our findings indicate that motility in confined spaces imposes high energetic demands on migrating cells, and cells migrate in the direction of least confinement to minimize energetic costs. Therefore, therapeutically targeting metabolism may limit cancer cell migration and metastasis.
机译:侵袭转移级联过程中的细胞迁移需要癌细胞在空间复杂的微环境中导航,从而为细胞迁移提供方向选择。在这里,我们研究在受限空间中迁移决策过程中的细胞能量学。理论和实验数据表明,通过有限空间迁移的高能成本是由细胞和基质顺应性之间的平衡以及直接决策的空间限制程度所介导的。由细胞工作产生动力以产生基质位移所需的能量成本随细胞刚度,基质刚度和空间限制程度的增加而增加,从而限制了迁移。通过评估可能的迁移路径之间的能源成本,我们可以预测迁移的可能性。我们的发现表明,密闭空间中的运动对迁移的细胞施加了很高的能量需求,并且细胞向最小约束的方向迁移以最小化能量消耗。因此,治疗性靶向代谢可能会限制癌细胞的迁移和转移。

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