Migliorini Elisa, Valat Anne, Picart Catherine, Cavalcanti-Adam Elisabetta Ada
Department of New Materials and Biosystems, Max Planck Institute for Intelligent Systems, Heisenbergstr. 3, D-70569 Stuttgart, Germany.
Department of Biophysical Chemistry, University of Heidelberg, INF 253, D-69120 Heidelberg, Germany, Tel: +49-6221-54 5064.
Cytokine Growth Factor Rev. 2016 Feb;27:43-54. doi: 10.1016/j.cytogfr.2015.11.008. Epub 2015 Dec 3.
Bone morphogenetic protein 2 (BMP-2) has been known for decades as a strong osteoinductive factor and for clinical applications is combined solely with collagen as carrier material. The growing concerns regarding side effects and the importance of BMP-2 in several developmental and physiological processes have raised the need to improve the design of materials by controlling BMP-2 presentation. Inspired by the natural cell environment, new material surfaces have been engineered and tailored to provide both physical and chemical cues that regulate BMP-2 activity. Here we describe surfaces designed to present BMP-2 to cells in a spatially and temporally controlled manner. This is achieved by trapping BMP-2 using physicochemical interactions, either covalently grafted or combined with other extracellular matrix components. In the near future, we anticipate that material science and biology will integrate and further develop tools for in vitro studies and potentially bring some of them toward in vivo applications.
几十年来,骨形态发生蛋白2(BMP - 2)一直被认为是一种强大的骨诱导因子,在临床应用中仅与胶原蛋白作为载体材料结合使用。对副作用的日益关注以及BMP - 2在多个发育和生理过程中的重要性,引发了通过控制BMP - 2的呈现来改进材料设计的需求。受天然细胞环境的启发,人们设计并定制了新的材料表面,以提供调节BMP - 2活性的物理和化学线索。在这里,我们描述了旨在以空间和时间可控的方式将BMP - 2呈现给细胞的表面。这是通过利用物理化学相互作用捕获BMP - 2来实现的,这些相互作用可以是共价接枝的,也可以是与其他细胞外基质成分结合的。在不久的将来,我们预计材料科学和生物学将整合并进一步开发用于体外研究的工具,并有可能将其中一些工具应用于体内。