由于嵌入的球形流化而增强的细胞外基质重塑。

IF 2.8 2区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
New Journal of Physics Pub Date : 2025-07-01 Epub Date: 2025-07-10 DOI:10.1088/1367-2630/ade81e
Tao Zhang, Shabeeb Ameen, Sounok Ghosh, Kyungeun Kim, Mrinal Pandey, Brian C H Cheung, Minh Thanh, Alison E Patteson, Mingming Wu, J M Schwarz
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引用次数: 0

摘要

将肿瘤细胞群(即肿瘤球体)嵌入纤维环境(如胶原网络)中,为研究肿瘤侵袭的生物物理机制提供了必要的体外平台。为了预测新的机制,我们使用顶点模型开发了嵌入式球体的三维计算模型,其中细胞表示为可变形多面体,通过主动连接弹簧机械耦合到光纤网络。随着接头弹簧的主动收缩,光纤网络发生变形。当我们调整椭球体的流变学和纤维网络刚度时,我们发现这两个因素都会影响纤维网络的重塑,类流体椭球体致密化和径向重新排列纤维网络的平均程度高于类固体椭球体,但仅适用于中等纤维网络刚度范围。我们的预测得到了实验研究的支持,实验研究比较了非致瘤性MCF10A球体和嵌入胶原网络的恶性MDA-MB-231球体。球体流变性依赖效应是细胞运动产生球体形状波动的结果。这些形状波动导致球体和光纤网络之间产生紧急反馈,从而进一步改造光纤网络。这种紧急反馈只发生在中等纤维网络刚度时,因为在低纤维网络刚度时,耦合系统的机械响应由球体主导,而在高纤维网络刚度时,机械响应由纤维网络主导。因此,我们能够量化最优球纤维网络的力学互易性。我们的研究结果揭示了嵌入的球体及其周围纤维网络之间复杂的形态-力学相互作用,球体收缩强度和球体形状波动在肿瘤侵袭前阶段发挥重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced extracellular matrix remodeling due to embedded spheroid fluidization.

Embedding a collective of tumor cells, i.e. a tumor spheroid, in a fibrous environment, such as a collagen network, provides an essential in vitro platform to investigate the biophysical mechanisms of tumor invasion. To predict new mechanisms, we develop a three-dimensional computational model of an embedded spheroid using a vertex model, with cells represented as deformable polyhedrons, mechanically coupled to a fiber network via active linker springs. As the linker springs actively contract, the fiber network remodels. As we tune the rheology of the spheroid and the fiber network stiffness, we find that both factors affect the remodeling of the fiber network with fluid-like spheroids densifying and radially realigning the fiber network more on average than solid-like spheroids but only for a range of intermediate fiber network stiffnesses. Our predictions are supported by experimental studies comparing non-tumorigenic MCF10A spheroids and malignant MDA-MB-231 spheroids embedded in collagen networks. The spheroid rheology-dependent effects are the result of cellular motility generating spheroid shape fluctuations. These shape fluctuations lead to emergent feedback between the spheroid and the fiber network to further remodel the fiber network. This emergent feedback occurs only at intermediate fiber network stiffness since at low fiber network stiffness, the mechanical response of the coupled system is dominated by the spheroid and for high fiber network stiffness, the mechanical response is dominated by the fiber network. We are therefore able to quantify the regime of optimal spheroid-fiber network mechanical reciprocity. Our results uncover intricate morphological-mechanical interplay between an embedded spheroid and its surrounding fiber network with both spheroid contractile strength and spheroid shape fluctuations playing important roles in the pre-invasion stages of tumor invasion.

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来源期刊
New Journal of Physics
New Journal of Physics 物理-物理:综合
CiteScore
6.20
自引率
3.00%
发文量
504
审稿时长
3.1 months
期刊介绍: New Journal of Physics publishes across the whole of physics, encompassing pure, applied, theoretical and experimental research, as well as interdisciplinary topics where physics forms the central theme. All content is permanently free to read and the journal is funded by an article publication charge.
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