Lee Youlee, Lee Jong Min, Bae Pan-Kee, Chung Il Yup, Chung Bong Hyun, Chung Bong Geun
Department of Bionano Technology, Hanyang University, Ansan, Korea.
Electrophoresis. 2015 Apr;36(7-8):994-1001. doi: 10.1002/elps.201400465. Epub 2015 Mar 24.
We developed the photo-crosslinkable hydrogel-based 3D microfluidic device to culture neural stem cells (NSCs) and tumors. The photo-crosslinkable gelatin methacrylate (GelMA) polymer was used as a physical barrier in the microfluidic device and collagen type I gel was employed to culture NSCs in a 3D manner. We demonstrated that the pore size was inversely proportional to concentrations of GelMA hydrogels, showing the pore sizes of 5 and 25 w/v% GelMA hydrogels were 34 and 4 μm, respectively. It also revealed that the morphology of pores in 5 w/v% GelMA hydrogels was elliptical shape, whereas we observed circular-shaped pores in 25 w/v% GelMA hydrogels. To culture NSCs and tumors in the 3D microfluidic device, we investigated the molecular diffusion properties across GelMA hydrogels, indicating that 25 w/v% GelMA hydrogels inhibited the molecular diffusion for 6 days in the 3D microfluidic device. In contrast, the chemicals were diffused in 5 w/v% GelMA hydrogels. Finally, we cultured NSCs and tumors in the hydrogel-based 3D microfluidic device, showing that 53-75% NSCs differentiated into neurons, while tumors were cultured in the collagen gels. Therefore, this photo-crosslinkable hydrogel-based 3D microfluidic culture device could be a potentially powerful tool for regenerative tissue engineering applications.
我们开发了基于光交联水凝胶的3D微流控装置,用于培养神经干细胞(NSCs)和肿瘤。光交联甲基丙烯酸明胶(GelMA)聚合物被用作微流控装置中的物理屏障,并且使用I型胶原蛋白凝胶以三维方式培养NSCs。我们证明孔径与GelMA水凝胶的浓度成反比,显示5 w/v%和25 w/v%的GelMA水凝胶的孔径分别为34和4μm。还发现5 w/v%的GelMA水凝胶中的孔形态为椭圆形,而在25 w/v%的GelMA水凝胶中观察到圆形孔。为了在3D微流控装置中培养NSCs和肿瘤,我们研究了跨GelMA水凝胶的分子扩散特性,表明25 w/v%的GelMA水凝胶在3D微流控装置中6天内抑制了分子扩散。相比之下,化学物质在5 w/v%的GelMA水凝胶中扩散。最后,我们在基于水凝胶的3D微流控装置中培养了NSCs和肿瘤,结果显示53 - 75%的NSCs分化为神经元,而肿瘤在胶原蛋白凝胶中培养。因此,这种基于光交联水凝胶的3D微流控培养装置可能是再生组织工程应用中一种潜在的强大工具。