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在微流控装置中制备细胞球状体阵列和球状体-单层共培养物。

Preparation of arrays of cell spheroids and spheroid-monolayer cocultures within a microfluidic device.

机构信息

Graduate School of Pure and Applied Sciences, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki 305-0006, Japan.

出版信息

J Biosci Bioeng. 2010 Nov;110(5):572-6. doi: 10.1016/j.jbiosc.2010.05.013. Epub 2010 Jul 1.

Abstract

This study describes a novel method for generation of an array of three-dimensional (3D) multicellular spheroids within a microchannel in patterned cultures containing one or multiple cell types. This method uses a unique property of a cross-linked albumin coated surface in which the surface can be switched from non-adhesive to cell adhesive upon electrostatic adsorption of a polycation. Introduction of a solution containing albumin and a cross-linking agent into a microchannel with an array of microwells caused the entire surface, with the exception of the interior of the microwells, to become coated with the cross-linked albumin layer. Cells that were seeded within the microchannel did not adhere to the surface of the microchannel and became entrapped in the microwells. HepG2 cells seeded in the microwells formed 3D spheroids with controlled sizes and shapes depending upon the dimensions of the microwells. When the albumin coated surface was subsequently exposed to an aqueous solution containing poly(ethyleneimine) (PEI), adhesion of secondary cells, fibroblasts, occurred in the regions surrounding the arrayed spheroids. This coculture system can be coupled with spatially controlled fluids such as gradients and focused flow generators for various biological and tissue engineering applications.

摘要

本研究描述了一种在含有一种或多种细胞类型的图案化培养物中,在微通道内生成三维(3D)多细胞球体阵列的新方法。该方法利用了交联白蛋白涂层表面的独特性质,即通过聚阳离子的静电吸附,表面可以从非粘附状态转变为粘附状态。将含有白蛋白和交联剂的溶液引入具有微槽阵列的微通道中,会使除微槽内部之外的整个表面都覆盖上交联白蛋白层。种在微通道内的细胞不会粘附在微通道表面上,而是被困在微槽中。种在微槽中的 HepG2 细胞形成了具有受控大小和形状的 3D 球体,具体取决于微槽的尺寸。随后,当白蛋白涂层表面暴露于含有聚(亚乙基亚胺)(PEI)的水溶液中时,在排列的球体周围的区域中会发生次级细胞(成纤维细胞)的粘附。这种共培养系统可以与空间受控流体(如梯度和聚焦流发生器)结合使用,用于各种生物和组织工程应用。

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