Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, St. Lucia, Australia.
Biotechnol J. 2013 Feb;8(2):167-79. doi: 10.1002/biot.201200149. Epub 2012 Aug 14.
The behavior and composition of both multipotent and pluripotent stem cell populations are exquisitely controlled by a complex, spatiotemporally variable interplay of physico-chemical, extracellular matrix, cell-cell interaction, and soluble factor cues that collectively define the stem cell niche. The push for stem cell-based regenerative medicine models and therapies has fuelled demands for increasingly accurate cellular environmental control and enhanced experimental throughput, driving an evolution of cell culture platforms away from conventional culture formats toward integrated systems. Arrayed cellular environments typically provide a set of discrete experimental elements with variation of one or several classes of stimuli across elements of the array. These are based on high-content/high-throughput detection, small sample volumes, and multiplexing of environments to increase experimental parameter space, and can be used to address a range of biological processes at the cell population, single-cell, or subcellular level. Arrayed cellular environments have the capability to provide an unprecedented understanding of the molecular and cellular events that underlie expansion and specification of stem cell and therapeutic cell populations, and thus generate successful regenerative medicine outcomes. This review focuses on recent key developments of arrayed cellular environments and their contribution and potential in stem cells and regenerative medicine.
多能和多能干细胞群体的行为和组成受到物理化学、细胞外基质、细胞间相互作用和可溶性因子线索的复杂时空变化的精细控制,这些线索共同定义了干细胞生态位。基于干细胞的再生医学模型和疗法的推动,对细胞环境的精确控制和实验通量的提高提出了更高的要求,推动了细胞培养平台从传统的培养模式向集成系统的发展。排列的细胞环境通常提供一组离散的实验元素,这些元素在数组的元素之间具有一种或几种刺激类别的变化。这些实验元素基于高内涵/高通量检测、小样本量和环境的多重化,以增加实验参数空间,并可用于解决细胞群体、单细胞或亚细胞水平的一系列生物学过程。排列的细胞环境有能力提供对干细胞和治疗细胞群体扩增和特化所依据的分子和细胞事件的前所未有的理解,从而产生成功的再生医学结果。本综述重点介绍了排列细胞环境的最新关键进展,及其在干细胞和再生医学中的贡献和潜力。