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基于偶氮苯的正弦形表面形貌驱动粘着斑限制并引导上皮细胞的集体迁移。

Azobenzene-based sinusoidal surface topography drives focal adhesion confinement and guides collective migration of epithelial cells.

机构信息

Faculty of Engineering and Natural Sciences, Tampere University, Tampere, Finland.

BioMediTech and Faculty of Medicine and Health Technology, Tampere University, Tampere, Finland.

出版信息

Sci Rep. 2020 Sep 18;10(1):15329. doi: 10.1038/s41598-020-71567-w.

Abstract

Surface topography is a key parameter in regulating the morphology and behavior of single cells. At multicellular level, coordinated cell displacements drive many biological events such as embryonic morphogenesis. However, the effect of surface topography on collective migration of epithelium has not been studied in detail. Mastering the connection between surface features and collective cellular behaviour is highly important for novel approaches in tissue engineering and repair. Herein, we used photopatterned microtopographies on azobenzene-containing materials and showed that smooth topographical cues with proper period and orientation can efficiently orchestrate cell alignment in growing epithelium. Furthermore, the experimental system allowed us to investigate how the orientation of the topographical features can alter the speed of wound closure in vitro. Our findings indicate that the extracellular microenvironment topography coordinates their focal adhesion distribution and alignment. These topographic cues are able to guide the collective migration of multicellular systems, even when cell-cell junctions are disrupted.

摘要

表面形貌是调节单细胞形态和行为的关键参数。在细胞水平上,细胞的协调位移驱动着许多生物学事件,如胚胎形态发生。然而,表面形貌对上皮细胞的集体迁移的影响还没有被详细研究。掌握表面特征与细胞集体行为之间的联系对于组织工程和修复的新方法非常重要。在此,我们使用含偶氮苯材料的光图案微形貌,表明具有适当周期和方向的光滑形貌线索可以有效地协调生长上皮细胞的对齐。此外,该实验系统使我们能够研究表面形貌的方向如何改变体外伤口闭合的速度。我们的研究结果表明,细胞外微环境形貌协调它们的粘着斑分布和排列。这些形貌线索能够引导多细胞系统的集体迁移,即使细胞-细胞连接被破坏。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0f3/7501301/860a098fa250/41598_2020_71567_Fig1_HTML.jpg

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