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Physical role of nuclear and cytoskeletal confinements in cell migration mode selection and switching

机译:核和细胞骨架限制在细胞迁移模式选择和转换中的物理作用

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There exists a large complexity and high plasticity in migration modes dependent on cell type, cell condition such physiological or pathological stages, microenvironmental conditions such as dimensionality, structural architecture, composition and adhesiveness, as well as cellular mechanical and tissue mechanical properties. The current knowledge on the plasticity in migration modes is limited and not yet fully understood. Many descriptions are fully based on biological and biochemical observations or instead focus entirely on biophysical parameters without integrating biological knowledge. Here, the biological approaches are compared with the biophysical approaches to understand and predict migration modes as well as their switching conditions in order to reveal the mechanical properties. The mechanical properties such as the stiffness can regulate the invasiveness and hence subsequently serve as a biomarker for invasiveness. However, the impact of the nuclear deformability on cellular motility and the impact of the cytoskeletal deformability are controversially discussed. In more detail, there are two different opinions: on the one hand it is stated that the nuclear deformability predicts solely cell migration independent of the cytoskeletal deformability and on the other hand it is stated that the cellular deformability regulates the nuclear deformability to facilitate cellular motility. In this review, it is pointed out and discussed what impact the nuclear confinement and the cytoskeletal confinement have on the selection of the individual migration mode and on how a switch between the migration modes is performed. Moreover, it is discussed whether the nuclear confinement is regulated by the cytoskeletal confinement such as an apical actin filament based capping structure over the entire nucleus. Finally, mechanical parameters such as the nuclear or cytoskeletal deformability may serve as a biomarker for cell migration and invasion in healthy, physiological and pathological processes such as cancer.
机译:取决于细胞类型,细胞状况(例如生理或病理学阶段),微环境状况(例如尺寸,结构结构,组成和粘附性)以及细胞机械和组织机械特性,迁移模式存在很大的复杂性和高可塑性。目前关于迁移模式可塑性的知识是有限的,尚未完全理解。许多描述完全基于生物学和生化观察,或者完全集中于生物物理参数而没有整合生物学知识。在这里,将生物学方法与生物物理方法进行比较,以了解和预测迁移模式及其转换条件,从而揭示机械性能。诸如刚度的机械性能可以调节侵入性,因此随后用作侵入性的生物标记。然而,有争议地讨论了核可变形性对细胞运动性的影响和细胞骨架可变形性的影响。更详细地讲,有两种不同的观点:一方面,据称核可变形性仅预测与细胞骨架变形性无关的细胞迁移;另一方面,据称细胞变形性调节核变形性以促进细胞运动。 。在这篇综述中,指出并讨论了核限制和细胞骨架限制对个体迁移模式的选择以及如何进行迁移模式之间的转换有什么影响。此外,讨论了核限制是否受细胞骨架限制,例如整个细胞核上基于顶端肌动蛋白丝的封闭结构的调控。最后,诸如核或细胞骨架可变形性的机械参数可以用作健康,生理和病理过程(例如癌症)中细胞迁移和侵袭的生物标记。

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