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首页> 外文期刊>Tissue engineering, Part A >Extracellular Matrix Properties Regulate the Migratory Response of Glioblastoma Stem Cells in Three-Dimensional Culture
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Extracellular Matrix Properties Regulate the Migratory Response of Glioblastoma Stem Cells in Three-Dimensional Culture

机译:细胞外基质特性调节胶质母细胞瘤干细胞在三维培养中的迁移反应

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Diffuse infiltration across brain tissue is a hallmark of glioblastoma and the main cause of unsuccessful total resection that leads to tumor reappearance. A subpopulation termed glioblastoma stem cells (GSCs) has been directly related to aggressive invasion; nonetheless, their migratory characteristics and regulation by the microenvironment are still unknown. In this study, we developed a composite matrix of hyaluronan (HA) structurally supported by a collagen-oligomer fibril network to simulate the brain tumor extracellular matrix (ECM) composition. Matrigel-coated microfibers were embedded within the matrix to create a tunable dual niche microenvironment that resembles the vascular network of the brain. This model was compared with the most commonly used in vitro three-dimensional (3D) culture formats, Matrigel and collagen type-I monomer matrices, to study how the mechanical and compositional properties of the ECM alter the migration characteristics of GSC neurospheres. The migration mode, distance, velocity, and morphology of the GSCs were monitored over a 72-h period. The cells altered their migration mode depending on the matrix composition, showing migration by expansive growth in Matrigel matrices, multicellular extension along rigid interfaces (as Matrigel glass and coated microfibers), and mesenchymal single-cell migration in collagen matrices. Velocity and distance of migration within each composition varied according to matrix mechanical properties. In the dual niche system, the presence of HA reduced velocity and number of migratory cells; however, cells that came in contact with the pseudovessels exhibited collective migration by an extensive strand and reached higher velocities than cells migrating individually across the 3D matrix. Our results show that GSCs adopt varied migration mechanisms to invade multiple ECM microenvironments, and the migration characteristics exhibited are highly influenced by the matrix physical properties. Moreover, GSC neurospheres exhibit concomitant single and collective migration as a function of the microenvironment topography to reach the most productive migration strategy.
机译:整个脑组织的弥漫性浸润是胶质母细胞瘤的标志,是全切除术未成功导致肿瘤重现的主要原因。称为胶质母细胞瘤干细胞(GSC)的亚群与侵袭性直接相关。但是,它们的迁移特性和受微环境的调节仍是未知的。在这项研究中,我们开发了由胶原蛋白-低聚物原纤维网络支撑的透明质酸(HA)复合基质,以模拟脑肿瘤细胞外基质(ECM)组成。基质胶包被的微纤维被嵌入基质中,以创建类似于大脑血管网络的可调节的双生态位微环境。将该模型与最常用的体外三维(3D)培养格式,Matrigel和I型胶原单体基质进行了比较,以研究ECM的机械和组成特性如何改变GSC神经球的迁移特性。在72小时内监测了GSC的迁移模式,距离,速度和形态。细胞根据基质组成改变其迁移模式,表现出在基质胶基质中的膨胀生长,沿刚性界面的多细胞延伸(如基质胶玻璃和包覆的微纤维)以及在胶原蛋白基质中的间充质单细胞迁移。每种成分内的速度和迁移距离根据基质的机械性能而变化。在双生态位系统中,HA的存在降低了迁移细胞的速度和数量。但是,与伪血管接触的细胞比单个跨3D矩阵迁移的细胞表现出了广泛的聚集迁移并达到了更高的速度。我们的结果表明,GSC采用不同的迁移机制来入侵多个ECM微环境,并且所表现出的迁移特性受到基质物理性质的强烈影响。此外,GSC神经球表现出伴随的单次迁移和集体迁移,这是微环境地形的函数,以实现最具生产力的迁移​​策略。

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