ACS Appl Mater Interfaces. 2015 May 20;7(19):10599-605. doi: 10.1021/acsami.5b02368. Epub 2015 May 11.
Substrate mechanics (e.g., stiffness and topography of the microenvironment) are likely critical for driving normal morphogenesis and tissue development. As such, substrate mechanics imposed by hydrogels have been exploited to guide the lineage differentiation of stem cells and to drive stemness. In this work, we chemically modified gelatin hydrogels through glyceraldehyde cross-linking to render them suitable for cell culture. The modified hydrogels proved to be ideal for embryonic stem cell osteogenesis, initially providing a soft nonadhesive surface for the formation of embryoid bodies. They subsequently degraded in culture to afford a harder surface during osteoblast differentiation. The gels synthesized are highly fluorescent, relatively easy to prepare, and can potentially aid in overcoming the challenge of imaging changes to the microenvironments of cells during three-dimensional cell culture. Exploiting these materials could lead to the development of tissue-engineered products of increased complexity and rational treatment strategies.
基质力学(例如微环境的硬度和形貌)可能对驱动正常形态发生和组织发育至关重要。因此,水凝胶所产生的基质力学已被用于指导干细胞的谱系分化并维持其干性。在这项工作中,我们通过甘油醛交联对明胶水凝胶进行了化学修饰,使其适合细胞培养。经修饰的水凝胶非常适合胚胎干细胞成骨,最初为形成胚状体提供了柔软的非粘附表面。随后在培养过程中降解,在成骨细胞分化过程中提供更硬的表面。所合成的凝胶具有高荧光性,相对容易制备,并可能有助于克服在三维细胞培养中对细胞微环境变化进行成像的挑战。利用这些材料可能会导致开发出更复杂的组织工程产品和更合理的治疗策略。