Department of Chemical Engineering, National Taiwan University, Taipei 106, Taiwan.
Acta Biomater. 2012 Oct;8(10):3678-86. doi: 10.1016/j.actbio.2012.06.033. Epub 2012 Jul 2.
Cell patterning is an important tool for biomedical research. In this work, we modified a technique combining mussel-inspired surface chemistry and microcontact printing (μCP) to modulate surface chemistry for cell patterning. Polymerized dopamine on poly(dimethylsiloxane) stamps was transferred to several cell-unfavorable substrates via μCP. Since cells only attached to the polydopamine (PDA)-imprinted areas, cell patterns were formed on a variety of cell-unfavorable surfaces. The stability of PDA imprints was proved under several harsh conditions. The cell affinity of PDA was modulated by co-deposition with several poly(ethylene imine) (PEI)-based copolymers, such as PEI, PEI-g-PEG (poly(ethylene glycol)) and PEI-g-galactose. The imprints of PDA/PEI-g-PEG provide the formation of cell patterns on cell-favorable substrates. Neuronal PC12 cells were patterned via imprinting of PDA/PEI, while HepG2/C3A cells were arranged on the imprint of PDA/PEI-g-galactose. Finally, co-culture of HepG2/C3A cells and L929 fibroblasts was accomplished by our micropatterning approach. This study demonstrated this simple and economic technique provides a powerful tool for development of functional patterned substrates for cell patterning. This technique should profit the preparation of cell patterns to study fundamental cell biology and to apply to biomedical engineering such as cell-based biosensors, diagnostic devices and tissue engineering.
细胞图案化是生物医学研究的重要工具。在这项工作中,我们改进了一种结合贻贝类表面化学和微接触印刷(μCP)的技术,用于调节表面化学以进行细胞图案化。通过 μCP 将聚合多巴胺转移到几种细胞不亲和的基底上。由于细胞仅附着在聚多巴胺(PDA)印迹区域上,因此在各种细胞不亲和的表面上形成了细胞图案。PDA 印迹的稳定性在几种苛刻条件下得到了证明。通过与几种基于聚(亚乙基亚胺)(PEI)的共聚物(例如 PEI、PEI-g-PEG(聚乙二醇)和 PEI-g-半乳糖)共沉积,可调节 PDA 的细胞亲和力。PDA/PEI-g-PEG 的印迹可在细胞亲和性基底上形成细胞图案。通过印迹 PDA/PEI,可对神经元 PC12 细胞进行图案化,而 HepG2/C3A 细胞则排列在 PDA/PEI-g-半乳糖的印迹上。最后,通过我们的微图案化方法完成了 HepG2/C3A 细胞和 L929 成纤维细胞的共培养。该研究证明了这种简单且经济的技术为开发用于细胞图案化的功能性图案化基底提供了一种强大的工具。该技术应有助于制备细胞图案,以研究基础细胞生物学,并应用于生物医学工程,例如基于细胞的生物传感器、诊断设备和组织工程。