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脑胶质瘤细胞的多尺度流变学。

Multiscale rheology of glioma cells.

机构信息

Institut Curie, PSL Research University, CNRS, UMR 144, 26 Rue D'Ulm, F-75005, Paris, France; Sorbonne Universités, UPMC University Paris 06, CNRS, UMR 144, 26 Rue D'Ulm, F-75005, Paris, France.

Institut Curie, PSL Research University, CNRS, UMR 144, 26 Rue D'Ulm, F-75005, Paris, France; Laboratoire Matières et Systèmes Complexes, Université de Paris, CNRS, UMR7057, Université Paris-Diderot, 10 Rue Alice Domon et Léonie Duquet, F-75013, Paris, France.

出版信息

Biomaterials. 2021 Aug;275:120903. doi: 10.1016/j.biomaterials.2021.120903. Epub 2021 May 26.

Abstract

Cells tend to soften during cancer progression, suggesting that mechanical phenotyping could be used as a diagnostic or prognostic method. Here we investigate the cell mechanics of gliomas, brain tumors that originate from glial cells or glial progenitors. Using two microrheology techniques, a single-cell parallel plates rheometer to probe whole-cell mechanics and optical tweezers to probe intracellular rheology, we show that cell mechanics discriminates human glioma cells of different grades. When probed globally, grade IV glioblastoma cells are softer than grade III astrocytoma cells, while they are surprisingly stiffer at the intracellular level. We explain this difference between global and local intracellular behaviours by changes in the composition and spatial organization of the cytoskeleton, and by changes in nuclear mechanics. Our study highlights the need to combine rheology techniques for potential diagnostic or prognostic methods based on cancer cell mechanophenotyping.

摘要

细胞在癌症进展过程中往往会变软,这表明机械表型分析可以用作诊断或预后方法。在这里,我们研究了神经胶质瘤的细胞力学特性,神经胶质瘤是起源于神经胶质细胞或神经胶质祖细胞的脑肿瘤。我们使用两种微流变技术,即单细胞平行板流变仪来探测整个细胞的力学特性,以及光镊来探测细胞内的流变特性,结果表明细胞力学可以区分不同分级的人类神经胶质瘤细胞。在整体上探测时,IV 级胶质母细胞瘤细胞比 III 级星形细胞瘤细胞更软,但在细胞内水平却出人意料地更硬。我们通过细胞骨架的组成和空间组织的变化以及核力学的变化来解释这种整体和局部细胞内行为之间的差异。我们的研究强调了需要结合流变技术,以基于癌症细胞机械表型分析的潜在诊断或预后方法。

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