Adult Cancer Program, Lowy Cancer Research Center, Prince of Wales Clinical School, University of New South Wales, Sydney, NSW, 2052, Australia; Department of Biomedical Engineering, Swinburne University of Technology, Hawthorn, Victoria, 3122, Australia.
Biomaterials Group, Department of Biomedical Engineering (Center of Excellence), Amirkabir University of Technology, Tehran, Iran; Department of Nanotechnology and Tissue Engineering, Stem Cell Technology Research Center, Tehran, Iran.
Biomaterials. 2018 Oct;181:333-346. doi: 10.1016/j.biomaterials.2018.07.016. Epub 2018 Jul 11.
Human stem cells, including pluripotent, embryonic and mesenchymal, stem cells play pivotal roles in cell-based therapies. Over the past decades, various methods for expansion and differentiation of stem cells have been developed to satisfy the burgeoning clinical demands. One of the most widely endorsed technologies for producing large cell quantities is using microcarriers (MCs) in bioreactor culture systems. In this review, we focus on microcarriers properties that can manipulate the expansion and fate of stem cells. Here, we provide an overview of commercially available MCs and focus on novel stimulus responsive MCs controlled by temperature, pH and field changes. Different features of MCs including composition, surface coating, morphology, geometry/size, surface functionalization, charge and mechanical properties, and their cellular effects are also highlighted. We then conclude with current challenges and outlook on this promising technology.
人干细胞,包括多能性、胚胎性和间充质性干细胞,在基于细胞的治疗中发挥着关键作用。在过去的几十年中,已经开发出各种方法来扩增和分化干细胞,以满足不断增长的临床需求。其中一种最广泛认可的用于大量生产细胞的技术是在生物反应器培养系统中使用微载体(MC)。在这篇综述中,我们专注于可以操纵干细胞扩增和命运的微载体特性。在这里,我们提供了市售 MC 的概述,并重点介绍了由温度、pH 和场变化控制的新型响应性 MC。还强调了 MC 的不同特性,包括组成、表面涂层、形态、几何/尺寸、表面功能化、电荷和机械性能及其对细胞的影响。然后,我们总结了这项有前途的技术目前面临的挑战和展望。