Department of Chemistry, CICECO, University of Aveiro, Campus Universitário de Santiago, 3810-193, Aveiro, Portugal.
Adv Healthc Mater. 2018 Dec;7(23):e1800849. doi: 10.1002/adhm.201800849. Epub 2018 Nov 2.
3D cell culture platforms have emerged as a setting that resembles in vivo environments replacing the traditional 2D platforms. Over the recent years, an extensive effort has been made on the development of more physiologically relevant 3D cell culture platforms. Extracellular matrix-based materials have been reported as a bioactive and biocompatible support for cell culture. For example, human plasma derivatives have been extensively used in cell culture. Despite all the promising results, in most cases these types of materials have poor mechanical properties and poor stability in vitro. Here plasma-based hydrogels with increased stability are proposed. Platelet lysates are modified by addition of methacryloyl groups (PLMA) that polymerize in controlled geometries upon UV light exposure. The hydrogels could also generate porous scaffolds after lyophilization. The results show that PLMA materials have increased mechanical properties that can be easily adjusted by changing PLMA concentration or modification degree. Cells readily adhere, proliferate, and migrate, exhibiting high viability when encapsulated in PLMA hydrogels. The innovation potential of PLMA materials is based on the fact that it is a complete xeno-free solution for human cell culture, thus an effective alternative to the current gold standards for 3D cell culture based on animal products.
3D 细胞培养平台的出现,为细胞培养提供了更接近体内环境的设置,取代了传统的 2D 平台。近年来,人们在开发更具生理相关性的 3D 细胞培养平台方面做出了大量努力。基于细胞外基质的材料已被报道为细胞培养的生物活性和生物相容性支持物。例如,人血浆衍生物已广泛用于细胞培养。尽管取得了所有有希望的结果,但在大多数情况下,这些类型的材料机械性能差,体外稳定性差。这里提出了具有更高稳定性的基于血浆的水凝胶。血小板裂解物通过添加甲基丙烯酰基(PLMA)进行修饰,在紫外光照射下可在受控的几何形状中聚合。水凝胶在冻干后也可以生成多孔支架。结果表明,PLMA 材料具有更高的机械性能,通过改变 PLMA 浓度或修饰度很容易进行调整。细胞在封装在 PLMA 水凝胶中时很容易附着、增殖和迁移,表现出很高的活力。PLMA 材料的创新潜力基于这样一个事实,即它是一种完全无动物成分的人类细胞培养解决方案,因此是基于动物产品的当前 3D 细胞培养金标准的有效替代品。