Department of Bionano Engineering, Hanyang University, Ansan 426-791, Korea.
Biotechnol Prog. 2011 Mar-Apr;27(2):466-72. doi: 10.1002/btpr.515. Epub 2011 Feb 22.
Bottom-up approach is a potentially useful tool for hydrogel assembly of cell-laden individual building blocks. In this article, we assembled individual building blocks of photocrosslinkable microgels in a rapid and controlled manner. Individual building blocks of poly(ethylene glycol) (PEG) microgels with square and hexagonal shapes were fabricated by using a photolithography technique. Individual building blocks of PEG microgels were assembled on a hydrophobic mineral oil phase in a bioreactor with a magnetic stirrer. The hydrophobic mineral oil minimized the surface free energy to assemble hydrophilic PEG microgels on a two-phase oil-aqueous solution interface. We used the hydrophobic effect as a driving force for the hydrogel assembly. Various types of the hydrogel assembly were generated by controlling the stirring rate. As stirring speed increased, the percentage of linear, branched, and closely packed hydrogel assembly was increased. However, the percentage of random assembly was reduced by increasing stirring rate. The stirring time also played an important role in controlling the types of hydrogel assembly. The percentage of linear, branched, and closely packed hydrogel assembly was improved by increasing stirring time. Therefore, we performed directed cell-laden hydrogel assembly using a two-phase bioreactor system and optimized the stirring rate and time to regulate the desired types of hydrogel assembly. Furthermore, we analyzed cell viability of hydrogel linear assembly with square shapes, showing highly viable even after secondary photocrosslinking reaction. This bioreactor system-based hydrogel assembly could be a potentially powerful approach for creating tissue microarchitectures in a three-dimensional manner.
自下而上的方法是用于水凝胶组装细胞填充的单个构建块的一种潜在有用的工具。在本文中,我们以快速和受控的方式组装了可光交联的微凝胶的单个构建块。通过使用光刻技术制造具有正方形和六边形形状的聚(乙二醇)(PEG)微凝胶的单个构建块。PEG 微凝胶的单个构建块在带有磁力搅拌器的生物反应器中在疏油矿物油相中组装。疏油矿物油将表面自由能最小化,从而将亲水性 PEG 微凝胶组装在两相间的油-水溶液界面上。我们使用疏水性作为水凝胶组装的驱动力。通过控制搅拌速度可以生成各种类型的水凝胶组装。随着搅拌速度的增加,线性、分支和紧密堆积的水凝胶组装的百分比增加。然而,通过增加搅拌速度,随机组装的百分比降低。搅拌时间在控制水凝胶组装类型方面也起着重要作用。通过增加搅拌时间,线性、分支和紧密堆积的水凝胶组装的百分比得到改善。因此,我们使用两相生物反应器系统进行了定向细胞填充水凝胶组装,并优化了搅拌速度和时间,以调节所需的水凝胶组装类型。此外,我们分析了具有正方形形状的水凝胶线性组装的细胞活力,即使在二次光交联反应后仍显示出高度的活力。这种基于生物反应器系统的水凝胶组装方法可能是一种以三维方式创建组织微结构的潜在有效方法。