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首页> 外文期刊>Journal of biomedical materials research, Part A >Cell-patterning using poly (ethylene glycol)-modified magnetite nanoparticles
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Cell-patterning using poly (ethylene glycol)-modified magnetite nanoparticles

机译:使用聚乙二醇修饰的磁铁矿纳米粒子进行细胞图案化

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摘要

Development of cell-patterning techniques is a major challenge for the construction of functional tissues and organs in tissue engineering. Recent progress in surface chemistry has enabled spatial control of cell adhesion onto cultural substrates by varying hydrophilicity, for example, by using poly (ethylene glycol) (PEG). In the present study, we developed a novel cell-patterning procedure using PEG-modified magnetite particles (PEG-Mags) and magnetic force. Using an array-patterned magnet, PEG-Mags were magnetically patterned on the surface of a tissue culture dish. The resultant substrate surface consisted of two regions: the PEG-Mag surface that acts as a cell-resistant region and the native substrate surface that promotes cell adhesion. When human keratinocyte HaCaT cells were seeded onto the PEG-Mag-patterned surface, cells adhered only to the native substrate surface, resulting in cell-patterning on the tissue culture dish. The patterned PEG-Mags were then washed away to expose the native substrate surface, and thereafter, when mouse myoblast C2C12 cells were seeded to the dish, cells adhered to the exposed substrate surface, resulting in a patterned coculture of heterotypic cells. Moreover, it is worth noting that the magnetic force-based cell-patterning procedure is not limited by the property of cultural substrate surfaces, and that cell-patterning of mouse fibroblast NIH3T3 cells on a monolayer of HaCaT cells was successfully achieved using PEG-Mags and magnetic force. These results indicate that this procedure provides a novel concept for cell-patterning and may be useful for tissue engineering and cell biology.
机译:细胞图案技术的发展是组织工程中功能组织和器官的构建的主要挑战。表面化学的最新进展使得能够通过改变亲水性,例如通过使用聚(乙二醇)(PEG),来控制细胞粘附在培养基质上的空间。在本研究中,我们开发了一种使用PEG修饰的磁铁矿颗粒(PEG-Mags)和磁力的新型细胞模式程序。使用阵列模式的磁体,在组织培养皿的表面上将PEG-Mags磁化。所得的底物表面由两个区域组成:充当细胞抗性区域的PEG-Mag表面和促进细胞粘附的天然底物表面。当将人角质形成细胞的HaCaT细胞播种到PEG-Mag图案化的表面上时,细胞仅粘附到天然底物表面上,从而在组织培养皿上形成细胞图案。然后将图案化的PEG-Mags洗掉以暴露天然底物表面,然后,当将小鼠成肌细胞C2C12细胞接种到培养皿中时,细胞会粘附在暴露的底物表面上,从而形成异型细胞的图案化共培养。此外,值得注意的是,基于磁力的细胞模式程序不受培养底物表面特性的限制,并且使用PEG-Mags成功地在HaCaT细胞单层上完成了小鼠成纤维细胞NIH3T3细胞的细胞模式和磁力。这些结果表明该程序提供了一种新的细胞模式概念,可能对组织工程和细胞生物学有用。

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