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Engineering of silicon surfaces at the micro- and nanoscales for cell adhesion and migration control

机译:微米和纳米级硅表面工程设计,用于细胞粘附和迁移控制

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摘要

The engineering of surface patterns is a powerful tool for analyzing cellular communication factors involved in the processes of adhesion, migration, and expansion, which can have a notable impact on therapeutic applications including tissue engineering. In this regard, the main objective of this research was to fabricate patterned and textured surfaces at micron- and nanoscale levels, respectively, with very different chemical and topographic characteristics to control cell–substrate interactions. For this task, one-dimensional (1-D) and two-dimensional (2-D) patterns combining silicon and nanostructured porous silicon were engineered by ion beam irradiation and subsequent electrochemical etch. The experimental results show that under the influence of chemical and morphological stimuli, human mesenchymal stem cells polarize and move directionally toward or away from the particular stimulus. Furthermore, a computational model was developed aiming at understanding cell behavior by reproducing the surface distribution and migration of human mesenchymal stem cells observed experimentally.
机译:表面图案工程是分析粘附,迁移和扩展过程中涉及的细胞通讯因子的有力工具,这可能会对包括组织工程在内的治疗应用产生重大影响。在这方面,这项研究的主要目的是分别制造微米级和纳米级的带图案和带纹理的表面,它们具有非常不同的化学和形貌特征来控制细胞-基质的相互作用。为此,通过离子束辐照和随后的电化学蚀刻来设计结合了硅和纳米结构多孔硅的一维(1-D)和二维(2-D)图案。实验结果表明,在化学和形态刺激的影响下,人间充质干细胞会极化并定向朝着或远离特定刺激方向移动。此外,开发了旨在通过再现实验观察到的人间充质干细胞的表面分布和迁移来理解细胞行为的计算模型。

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