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基质限制调节三维球体分选和爆发式集体迁移。

Matrix confinement modulates 3D spheroid sorting and burst-like collective migration.

作者信息

Cai Grace, Li Xinzhi, Lin Shan-Shan, Chen Samuel J, Rodgers Nicole C, Koning Katherine M, Bi Dapeng, Liu Allen P

机构信息

Applied Physics Program, University of Michigan, Ann Arbor, MI, USA.

Department of Physics, Carnegie Mellon University, Pittsburgh, PA, USA.

出版信息

Acta Biomater. 2024 Apr 15;179:192-206. doi: 10.1016/j.actbio.2024.03.007. Epub 2024 Mar 14.

Abstract

While it is known that cells with differential adhesion tend to segregate and preferentially sort, the physical forces governing sorting and invasion in heterogeneous tumors remain poorly understood. To investigate this, we tune matrix confinement, mimicking changes in the stiffness and confinement of the tumor microenvironment, to explore how physical confinement influences individual and collective cell migration in 3D spheroids. High levels of confinement lead to cell sorting while reducing matrix confinement triggers the collective fluidization of cell motion. Cell sorting, which depends on cell-cell adhesion, is crucial to this phenomenon. Burst-like migration does not occur for spheroids that have not undergone sorting, regardless of the degree of matrix confinement. Using computational Self-Propelled Voronoi modeling, we show that spheroid sorting and invasion into the matrix depend on the balance between cell-generated forces and matrix resistance. The findings support a model where matrix confinement modulates 3D spheroid sorting and unjamming in an adhesion-dependent manner, providing insights into the mechanisms of cell sorting and migration in the primary tumor and toward distant metastatic sites. STATEMENT OF SIGNIFICANCE: The mechanical properties of the tumor microenvironment significantly influence cancer cell migration within the primary tumor, yet how these properties affect intercellular interactions in heterogeneous tumors is not well understood. By utilizing calcium and calcium chelators, we dynamically alter collagen-alginate hydrogel stiffness and investigate tumor cell behavior within co-culture spheroids in response to varying degrees of matrix confinement. High confinement is found to trigger cell sorting while reducing confinement for sorted spheroids facilitates collective cell invasion. Notably, without prior sorting, spheroids do not exhibit burst-like migration, regardless of confinement levels. This work establishes that matrix confinement and intercellular adhesion regulate 3D spheroid dynamics, offering insights into cellular organization and migration within the primary tumor.

摘要

虽然已知具有不同粘附力的细胞倾向于分离并优先分选,但控制异质性肿瘤中分选和侵袭的物理力仍知之甚少。为了研究这一点,我们调节基质限制,模拟肿瘤微环境的硬度和限制变化,以探索物理限制如何影响三维球体中单个细胞和集体细胞的迁移。高水平的限制导致细胞分选,而降低基质限制则触发细胞运动的集体流化。依赖于细胞间粘附的细胞分选对这一现象至关重要。无论基质限制程度如何,未经过分选的球体都不会发生爆发式迁移。使用计算自推进式沃罗诺伊模型,我们表明球体分选和向基质中的侵袭取决于细胞产生的力与基质阻力之间的平衡。这些发现支持了一个模型,即基质限制以依赖粘附的方式调节三维球体分选和解聚,为原发性肿瘤以及向远处转移部位的细胞分选和迁移机制提供了见解。重要性声明:肿瘤微环境的力学性质显著影响原发性肿瘤内癌细胞的迁移,但这些性质如何影响异质性肿瘤中的细胞间相互作用尚不清楚。通过使用钙和钙螯合剂,我们动态改变胶原 - 藻酸盐水凝胶的硬度,并研究共培养球体中肿瘤细胞在不同程度基质限制下的行为。发现高限制会触发细胞分选,而降低已分选球体的限制则有利于集体细胞侵袭。值得注意的是,未经预先分选的球体,无论限制水平如何,都不会表现出爆发式迁移。这项工作表明基质限制和细胞间粘附调节三维球体动力学,为原发性肿瘤内的细胞组织和迁移提供了见解。

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