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细胞胶囊技术的数字孪生:多孔介质力学视角下的新兴成果。

Digital twinning of Cellular Capsule Technology: Emerging outcomes from the perspective of porous media mechanics.

机构信息

Institut de Biomécanique Humaine Georges Charpak, Arts et Metiers Institute of Technology, Paris, France.

Department of Engineering Sciences, Institute for Computational Engineering Sciences, Faculté des Sciences de la Technologie et de Médecine, Université du Luxembourg, Luxembourg, Luxembourg.

出版信息

PLoS One. 2021 Jul 12;16(7):e0254512. doi: 10.1371/journal.pone.0254512. eCollection 2021.

Abstract

Spheroids encapsulated within alginate capsules are emerging as suitable in vitro tools to investigate the impact of mechanical forces on tumor growth since the internal tumor pressure can be retrieved from the deformation of the capsule. Here we focus on the particular case of Cellular Capsule Technology (CCT). We show in this contribution that a modeling approach accounting for the triphasic nature of the spheroid (extracellular matrix, tumor cells and interstitial fluid) offers a new perspective of analysis revealing that the pressure retrieved experimentally cannot be interpreted as a direct picture of the pressure sustained by the tumor cells and, as such, cannot therefore be used to quantify the critical pressure which induces stress-induced phenotype switch in tumor cells. The proposed multiphase reactive poro-mechanical model was cross-validated. Parameter sensitivity analyses on the digital twin revealed that the main parameters determining the encapsulated growth configuration are different from those driving growth in free condition, confirming that radically different phenomena are at play. Results reported in this contribution support the idea that multiphase reactive poro-mechanics is an exceptional theoretical framework to attain an in-depth understanding of CCT experiments, to confirm their hypotheses and to further improve their design.

摘要

包封在藻酸盐胶囊中的球体正在成为研究机械力对肿瘤生长影响的合适的体外工具,因为可以从胶囊的变形中获得内部肿瘤压力。在这里,我们专注于细胞胶囊技术 (CCT) 的特殊情况。在本研究中,我们表明,一种考虑到球体的三相性质(细胞外基质、肿瘤细胞和细胞间液)的建模方法提供了新的分析视角,揭示了实验中获得的压力不能直接解释为肿瘤细胞所承受的压力,因此不能用于量化导致肿瘤细胞应激诱导表型转换的临界压力。提出的多相反应渗透力学模型经过了交叉验证。数字孪生的参数敏感性分析表明,决定封装生长结构的主要参数与在自由条件下生长的参数不同,这证实了完全不同的现象在起作用。本研究报告的结果支持这样一种观点,即多相反应渗透力学是一个特殊的理论框架,可以深入了解 CCT 实验,验证它们的假设,并进一步改进它们的设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be06/8274916/a2e816ffe2eb/pone.0254512.g001.jpg

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