BioLamina, Löfströms Allé 5A, 172 66 Sundbyberg, Sweden.
Medical Research Council Centre for Regenerative Medicine, University of Edinburgh, 5 Little France Drive, Edinburgh EH16 4UU, UK.
Philos Trans R Soc Lond B Biol Sci. 2018 Jul 5;373(1750). doi: 10.1098/rstb.2017.0230.
Over the past few decades, a variety of different reagents for stem cell maintenance and differentiation have been commercialized. These reagents share a common goal in facilitating the manufacture of products suitable for cell therapy while reducing the amount of non-defined components. Lessons from developmental biology have identified signalling molecules that can guide the differentiation process , but less attention has been paid to the extracellular matrix used. With the introduction of more biologically relevant and defined matrices, that better mimic specific cell niches, researchers now have powerful resources to fine-tune their differentiation systems, which may allow the manufacture of therapeutically relevant cell types. In this review article, we revisit the basics of the extracellular matrix, and explore the important role of the cell-matrix interaction. We focus on laminin proteins because they help to maintain pluripotency and drive cell fate specification.This article is part of the theme issue 'Designer human tissue: coming to a lab near you'.
在过去的几十年中,已经商业化了多种不同的用于干细胞维持和分化的试剂。这些试剂的共同目标是促进适合细胞治疗的产品的制造,同时减少非定义成分的数量。发育生物学的经验教训已经确定了可以指导分化过程的信号分子,但对外层基质的关注较少。随着更具生物相关性和定义性的基质的引入,这些基质更好地模拟了特定的细胞生态位,研究人员现在拥有了强大的资源来微调他们的分化系统,这可能允许制造具有治疗相关性的细胞类型。在这篇综述文章中,我们重新审视了细胞外基质的基础知识,并探讨了细胞-基质相互作用的重要作用。我们专注于层粘连蛋白蛋白,因为它们有助于维持多能性并推动细胞命运特化。本文是主题为“设计人类组织:即将进入您附近的实验室”的一部分。