Unjamming Transition as a Paradigm for Biomechanical Control of Cancer Metastasis

IF 1.6 4区 生物学 Q4 CELL BIOLOGY Cytoskeleton Pub Date : 2024-12-05 DOI:10.1002/cm.21963
Grace Cai, Nicole C. Rodgers, Allen P. Liu
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Abstract

Tumor metastasis is a complex phenomenon that poses significant challenges to current cancer therapeutics. While the biochemical signaling involved in promoting motile phenotypes is well understood, the role of biomechanical interactions has recently begun to be incorporated into models of tumor cell migration. Specifically, we propose the unjamming transition, adapted from physical paradigms describing the behavior of granular materials, to better discern the transition toward an invasive phenotype. In this review, we introduce the jamming transition broadly and narrow our discussion to the different modes of 3D tumor cell migration that arise. Then we discuss the mechanical interactions between tumor cells and their neighbors, along with the interactions between tumor cells and the surrounding extracellular matrix. We center our discussion on the interactions that induce a motile state or unjamming transition in these contexts. By considering the interplay between biochemical and biomechanical signaling in tumor cell migration, we can advance our understanding of biomechanical control in cancer metastasis.

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作为生物力学控制肿瘤转移的一种范式。
肿瘤转移是一种复杂的现象,对目前的癌症治疗提出了重大挑战。虽然参与促进运动表型的生化信号被很好地理解,但生物力学相互作用的作用最近开始被纳入肿瘤细胞迁移模型。具体来说,我们提出了从描述颗粒材料行为的物理范式改编的无干扰过渡,以更好地辨别向侵入性表型的过渡。在这篇综述中,我们广泛地介绍了干扰转变,并将我们的讨论范围缩小到出现的三维肿瘤细胞迁移的不同模式。然后,我们讨论了肿瘤细胞与邻近细胞之间的机械相互作用,以及肿瘤细胞与周围细胞外基质之间的相互作用。我们集中讨论在这些环境中诱导运动状态或无干扰过渡的相互作用。通过考虑肿瘤细胞迁移过程中生化和生物力学信号的相互作用,我们可以进一步了解生物力学对肿瘤转移的控制。
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来源期刊
Cytoskeleton
Cytoskeleton CELL BIOLOGY-
CiteScore
5.50
自引率
3.40%
发文量
24
审稿时长
6-12 weeks
期刊介绍: Cytoskeleton focuses on all aspects of cytoskeletal research in healthy and diseased states, spanning genetic and cell biological observations, biochemical, biophysical and structural studies, mathematical modeling and theory. This includes, but is certainly not limited to, classic polymer systems of eukaryotic cells and their structural sites of attachment on membranes and organelles, as well as the bacterial cytoskeleton, the nucleoskeleton, and uncoventional polymer systems with structural/organizational roles. Cytoskeleton is published in 12 issues annually, and special issues will be dedicated to especially-active or newly-emerging areas of cytoskeletal research.
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