Division of Mathematics, University of Dundee, Dundee, DD1 4HN, Scotland, UK.
Bull Math Biol. 2020 May 26;82(6):65. doi: 10.1007/s11538-020-00732-z.
Local cancer invasion of tissue is a complex, multiscale process which plays an essential role in tumour progression. During the complex interaction between cancer cell population and the extracellular matrix (ECM), of key importance is the role played by both bulk two-scale dynamics of ECM fibres within collective movement of the tumour cells and the multiscale leading edge dynamics driven by proteolytic activity of the matrix-degrading enzymes (MDEs) that are secreted by the cancer cells. As these two multiscale subsystems share and contribute to the same tumour macro-dynamics, in this work we develop further the model introduced in Shuttleworth and Trucu (Bull Math Biol 81:2176-2219, 2019. https://doi.org/10.1007/s11538-019-00598-w) by exploring a new aspect of their interaction that occurs at the cell scale. Specifically, here we will focus on understanding the cell-scale cross talk between the micro-scale parts of these two multiscale subsystems which get to interact directly in the peritumoural region, with immediate consequences both for MDE micro-dynamics occurring at the leading edge of the tumour and for the cell-scale rearrangement of the naturally oriented ECM fibres in the peritumoural region, ultimately influencing the way tumour progresses in the surrounding tissue. To that end, we will propose a new modelling that captures the ECM fibres degradation not only at macro-scale in the bulk of the tumour but also explicitly in the micro-scale neighbourhood of the tumour interface as a consequence of the interactions with molecular fluxes of MDEs that exercise their spatial dynamics at the invasive edge of the tumour.
局部组织中的癌症侵袭是一个复杂的多尺度过程,在肿瘤进展中起着至关重要的作用。在癌细胞群体与细胞外基质(ECM)之间的复杂相互作用中,ECM 纤维整体的两尺度动力学在肿瘤细胞的集体运动中起着重要作用,而由癌细胞分泌的基质降解酶(MDE)的蛋白水解活性驱动的多尺度前缘动力学也起着关键作用。由于这两个多尺度子系统共享并促成了相同的肿瘤宏观动力学,因此在这项工作中,我们通过探索它们在细胞尺度上的相互作用的一个新方面,进一步发展了 Shuttleworth 和 Trucu(Bull Math Biol 81:2176-2219, 2019. https://doi.org/10.1007/s11538-019-00598-w)中引入的模型。具体来说,我们将关注理解这两个多尺度子系统的微观部分在细胞尺度上的相互作用,这些微观部分在肿瘤周围区域直接相互作用,对肿瘤前缘发生的 MDE 微观动力学以及肿瘤周围区域中自然定向的 ECM 纤维的细胞尺度重新排列都有直接影响,最终影响肿瘤在周围组织中的生长方式。为此,我们将提出一种新的建模方法,该方法不仅可以在肿瘤的整体中捕捉到 ECM 纤维的宏观降解,还可以在肿瘤界面的微尺度邻域中明确捕捉到 ECM 纤维的降解,这是由于 MDE 的分子通量与肿瘤界面的相互作用,从而在肿瘤的侵袭边缘发挥其空间动力学。