School of Engineering, Deakin University, Geelong, Victoria 3216, Australia.
Biomicrofluidics. 2013 Oct 29;7(5):51502. doi: 10.1063/1.4826935. eCollection 2013.
Microfluidic technology provides precise, controlled-environment, cost-effective, compact, integrated, and high-throughput microsystems that are promising substitutes for conventional biological laboratory methods. In recent years, microfluidic cell culture devices have been used for applications such as tissue engineering, diagnostics, drug screening, immunology, cancer studies, stem cell proliferation and differentiation, and neurite guidance. Microfluidic technology allows dynamic cell culture in microperfusion systems to deliver continuous nutrient supplies for long term cell culture. It offers many opportunities to mimic the cell-cell and cell-extracellular matrix interactions of tissues by creating gradient concentrations of biochemical signals such as growth factors, chemokines, and hormones. Other applications of cell cultivation in microfluidic systems include high resolution cell patterning on a modified substrate with adhesive patterns and the reconstruction of complicated tissue architectures. In this review, recent advances in microfluidic platforms for cell culturing and proliferation, for both simple monolayer (2D) cell seeding processes and 3D configurations as accurate models of in vivo conditions, are examined.
微流控技术提供了精确、可控环境、经济高效、紧凑、集成和高通量的微系统,有望替代传统的生物学实验室方法。近年来,微流控细胞培养设备已被用于组织工程、诊断、药物筛选、免疫学、癌症研究、干细胞增殖和分化以及神经突导向等应用。微流控技术允许在微灌注系统中进行动态细胞培养,为长期细胞培养提供持续的营养供应。它通过创建生化信号(如生长因子、趋化因子和激素)的浓度梯度,为模拟细胞-细胞和细胞-细胞外基质相互作用提供了许多机会。微流控系统中细胞培养的其他应用包括在具有粘附图案的改性基底上进行高分辨率细胞图案化,以及重建复杂的组织架构。在本文中,我们综述了用于细胞培养和增殖的微流控平台的最新进展,这些平台既适用于简单的单层(2D)细胞接种过程,也适用于作为体内条件准确模型的 3D 结构。