He Jiankang, Du Yanan, Villa-Uribe Jose L, Hwang Changmo, Li Dichen, Khademhosseini Ali
Center for Biomedical Engineering, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, 02115, USA; Harvard-MIT Division of Health Sciences and Technology, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA; State Key Laboratory of Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.
Adv Funct Mater. 2010;20(1):131-137. doi: 10.1002/adfm.200901311.
Many biological processes are regulated by gradients of bioactive chemicals. Thus, the generation of materials with embedded chemical gradients may be beneficial for understanding biological phenomena and generating tissue-mimetic constructs. Here we describe a simple and versatile method to rapidly generate materials containing centimeter-long gradients of chemical properties in a microfluidic channel. The formation of chemical gradient was initiated by a passive-pump-induced forward flow and further developed during an evaporation-induced backward flow. The gradient was spatially controlled by the backward flow time and the hydrogel material containing the gradient was synthesized via photopolymerization. Gradients of a cell-adhesion ligand, Arg-Gly-Asp-Ser (RGDS), was incorporated in the poly(ethylene glycol)-diacrylate (PEG-DA) hydrogels to test the response of endothelial cells. The cells attached and spread along the hydrogel material in a manner consistent with the RGDS gradient profile. A hydrogel containing PEG-DA concentration gradient and constant RGDS concentration was also generated. The morphology of cells cultured on such hydrogel changed from round in the lower PEG-DA concentration regions to well-spread in the higher PEG-DA concentration regions. This approach is expected to be a valuable tool to investigate the cell-material interactions in a simple and high-throughput manner and to design graded biomimetic materials for tissue engineering applications.
许多生物过程受生物活性化学物质梯度的调控。因此,生成具有嵌入式化学梯度的材料可能有助于理解生物现象并构建仿组织结构。在此,我们描述了一种简单且通用的方法,可在微流控通道中快速生成具有厘米级化学性质梯度的材料。化学梯度的形成由被动泵诱导的正向流动启动,并在蒸发诱导的反向流动过程中进一步发展。通过反向流动时间对梯度进行空间控制,并通过光聚合反应合成包含该梯度的水凝胶材料。将细胞黏附配体精氨酸 - 甘氨酸 - 天冬氨酸 - 丝氨酸(Arg - Gly - Asp - Ser,RGDS)的梯度引入聚乙二醇二丙烯酸酯(PEG - DA)水凝胶中,以测试内皮细胞的反应。细胞沿着水凝胶材料附着并铺展,其方式与RGDS梯度分布一致。还生成了一种含有PEG - DA浓度梯度和恒定RGDS浓度的水凝胶。在这种水凝胶上培养的细胞形态从PEG - DA浓度较低区域的圆形变为PEG - DA浓度较高区域的充分铺展状态。该方法有望成为一种有价值的工具,以简单且高通量的方式研究细胞与材料的相互作用,并为组织工程应用设计分级仿生材料。