Department of Biological Sciences , Oakland University, Rochester, MI, 48309, USA; OU-WB Institute for Stem Cell and Regenerative Medicine, Oakland University, Rochester, MI, 48309, USA.
Department of Biological Sciences , Oakland University, Rochester, MI, 48309, USA; OU-WB Institute for Stem Cell and Regenerative Medicine, Oakland University, Rochester, MI, 48309, USA.
Colloids Surf B Biointerfaces. 2017 Nov 1;159:62-77. doi: 10.1016/j.colsurfb.2017.07.051. Epub 2017 Jul 27.
Stem cells (SCs) hold great promise for cell therapy, tissue engineering, and regenerative medicine as well as pharmaceutical and biotechnological applications. They have the capacity to self-renew and the ability to differentiate into specialized cell types depending upon their source of isolation. However, use of SCs for clinical applications requires a high quality and quantity of cells. This necessitates large-scale expansion of SCs followed by efficient and homogeneous differentiation into functional derivatives. Traditional methods for maintenance and expansion of cells rely on two-dimensional (2-D) culturing techniques using plastic culture plates and xenogenic media. These methods provide limited expansion and cells tend to lose clonal and differentiation capacity upon long-term passaging. Recently, new approaches for the expansion of SCs have emphasized three-dimensional (3-D) cell growth to mimic the in vivo environment. This review provides a comprehensive compendium of recent advancements in culturing SCs using 2-D and 3-D techniques involving spheroids, biomaterials, and bioreactors. In addition, potential challenges to achieve billion-fold expansion of cells are discussed.
干细胞(SCs)在细胞治疗、组织工程和再生医学以及药物和生物技术应用方面具有巨大的应用潜力。它们具有自我更新的能力,并且能够根据其分离来源分化为特定的细胞类型。然而,SCs 在临床应用中需要高质量和大量的细胞。这就需要大规模扩增SCs,然后有效地、均匀地分化为功能性衍生物。传统的细胞维持和扩增方法依赖于使用塑料培养板和异种培养基的二维(2-D)培养技术。这些方法提供的扩增有限,并且细胞在长期传代过程中往往会失去克隆和分化能力。最近,SCs 扩增的新方法强调了三维(3-D)细胞生长,以模拟体内环境。本综述提供了一个全面的纲要,介绍了使用 2-D 和 3-D 技术培养SCs 的最新进展,包括球体、生物材料和生物反应器。此外,还讨论了实现细胞数十亿倍扩增的潜在挑战。