Institute of Chemistry and Biochemistry, Freie Universität Berlin, Takustr. 3, 14195, Berlin, Germany.
Institute of Pharmacy, Freie Universität Berlin, Königin-Luise-Str. 2 + 4, 14195, Berlin, Germany.
Small. 2020 Mar;16(10):e1905422. doi: 10.1002/smll.201905422. Epub 2020 Feb 17.
The topographic features of an implant, which mechanically regulate cell behaviors and functions, are critical for the clinical success in tissue regeneration. How cells sense and respond to the topographical cues, e.g., interfacial roughness, is yet to be fully understood and even debatable. Here, the mechanotransduction and fate determination of human mesenchymal stem cells (MSCs) on surface roughness gradients are systematically studied. The broad range of topographical scales and high-throughput imaging is achieved based on a catecholic polyglycerol coating fabricated by a one-step-tilted dip-coating approach. It is revealed that the adhesion of MSCs is biphasically regulated by interfacial roughness. The cell mechanotransduction is investigated from focal adhesion to transcriptional activity, which explains that cellular response to interfacial roughness undergoes a direct force-dependent mechanism. Moreover, the optimized roughness for promoting cell fate specification is explored.
种植体的表面形貌特征在机械上调节细胞的行为和功能,对组织再生的临床成功至关重要。然而,细胞如何感知和响应表面形貌特征(例如界面粗糙度),甚至这方面还存在争议,尚未被完全理解。本研究系统地研究了人类间充质干细胞(MSCs)在表面粗糙度梯度上的力学转导和命运决定。通过一步倾斜浸涂方法制备儿茶酚基聚甘油涂层,实现了广泛的形貌尺度和高通量成像。结果表明,界面粗糙度双相调节 MSC 的黏附。从黏附斑到转录活性,研究了细胞的力学转导,这表明细胞对界面粗糙度的反应经历了直接的力依赖性机制。此外,还探索了促进细胞命运特化的最佳粗糙度。