首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Effects of a cell-imprinted poly(dimethylsiloxane) surface on the cellular activities of MG63 osteoblast-like cells: Preparation of a patterned surface, surface characterization, and bone mineralization
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Effects of a cell-imprinted poly(dimethylsiloxane) surface on the cellular activities of MG63 osteoblast-like cells: Preparation of a patterned surface, surface characterization, and bone mineralization

机译:细胞印迹聚二甲基硅氧烷表面对MG63成骨细胞样细胞细胞活性的影响:图案表面的制备,表面表征和骨矿化

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摘要

To understand the relationship between surface patterns and cellular activities, various types of pattern models have been investigated. In this study, we suggest a new surface pattern model, which replicates proliferated cells. We used osteoblast-like cells (MG63) as a target cell pattern and constructed various cell-imprinted surfaces using an electric field assisted casting method for different culturing times (4 h and 7 and 14 days). On the basis of scanning electron microscopy images and three-dimensional topographical optical images, we acquired the cells' unique patterns and used them for replicating patterned substrates. We then cultured MG63 cells in the patterned surfaces for 7 and 14 days to observe various cellular activities, cell viability, alkaline phosphatase (ALP) activity, and mineralization. Higher cellular activities were observed on the roughened surface as compared with the smooth surface. In particular, we obtained the most appropriate roughness value (R _a = 702 ± 87 nm) from proliferated cells cultured over 14 days. On the basis of these findings, we demonstrate a new biomimical surface model that enhances cellular activities at the cell-substrate interface.
机译:为了理解表面图案和细胞活性之间的关系,已经研究了各种类型的图案模型。在这项研究中,我们建议一种新的表面模式模型,该模型可以复制增殖的细胞。我们使用成骨细胞样细胞(MG63)作为目标细胞模式,并使用电场辅助浇铸法在不同的培养时间(4 h,7和14天)上构建了各种细胞印迹表面。基于扫描电子显微镜图像和三维地形光学图像,我们获得了细胞的独特图案,并将其用于复制图案化的基材。然后,我们在图案化的表面中培养MG63细胞7天和14天,以观察各种细胞活性,细胞活力,碱性磷酸酶(ALP)活性和矿化作用。与光滑表面相比,在粗糙表面上观察到更高的细胞活性。特别是,我们从培养14天的增殖细胞中获得了最合适的粗糙度值(R_a = 702±87 nm)。基于这些发现,我们证明了一种新的生物医学表面模型,可增强细胞-基质界面处的细胞活性。

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