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明胶甲基丙烯酸盐作为一种有前途的水凝胶,可用于三维微尺度组织和电纺图案细胞的增殖。

Gelatin methacrylate as a promising hydrogel for 3D microscale organization and proliferation of dielectrophoretically patterned cells.

机构信息

WPI-Advanced Institute for Materials Research, Tohoku University, Sendai 980-8577, Japan.

出版信息

Lab Chip. 2012 Aug 21;12(16):2959-69. doi: 10.1039/c2lc40213k. Epub 2012 Jul 9.

Abstract

Establishing the 3D microscale organization of cells has numerous practical applications, such as in determining cell fate (e.g., proliferation, migration, differentiation, and apoptosis) and in making functional tissue constructs. One approach to spatially pattern cells is by dielectrophoresis (DEP). DEP has characteristics that are important for cell manipulation, such as high accuracy, speed, scalability, and the ability to handle both adherent and non-adherent cells. However, widespread application of this method is largely restricted because there is a limited number of suitable hydrogels for cell encapsulation. To date, polyethylene glycol-diacrylate (PEG-DA) and agarose have been used extensively for dielectric patterning of cells. In this study, we propose gelatin methacrylate (GelMA) as a promising hydrogel for use in cell dielectropatterning because of its biocompatibility and low viscosity. Compared to PEG hydrogels, GelMA hydrogels showed superior performance when making cell patterns for myoblast (C2C12) and endothelial (HUVEC) cells as well as in maintaining cell viability and growth. We also developed a simple and robust protocol for co-culture of these cells. Combined application of the GelMA hydrogels and the DEP technique is suitable for creating highly complex microscale tissues with important applications in fundamental cell biology and regenerative medicine in a rapid, accurate, and scalable manner.

摘要

建立三维微观细胞组织具有许多实际应用,例如确定细胞命运(例如增殖、迁移、分化和凋亡)和制造功能性组织构建体。一种对细胞进行空间模式化的方法是通过介电泳(DEP)。DEP 具有对细胞操作很重要的特性,例如高精度、速度、可扩展性以及处理贴壁和非贴壁细胞的能力。然而,由于用于细胞封装的合适水凝胶数量有限,因此这种方法的广泛应用在很大程度上受到限制。迄今为止,聚乙二醇二丙烯酸酯(PEG-DA)和琼脂糖已被广泛用于细胞介电泳图案化。在这项研究中,我们提出明胶甲基丙烯酰(GelMA)作为一种有前途的水凝胶,用于细胞介电泳图案化,因为它具有生物相容性和低粘度。与 PEG 水凝胶相比,GelMA 水凝胶在制作成肌细胞(C2C12)和内皮细胞(HUVEC)的细胞图案以及维持细胞活力和生长方面表现出更好的性能。我们还开发了一种简单而强大的共培养这些细胞的方案。GelMA 水凝胶和 DEP 技术的联合应用适合以快速、准确和可扩展的方式创建具有重要基础细胞生物学和再生医学应用的高度复杂微尺度组织。

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