Zapp Cornelia, Mundinger Patricia, Boehm Heike
Department of Cellular Biophysics, Max Planck Institute for Medical Research, Heidelberg, Germany.
Institute for Physical Chemistry, Heidelberg University, Heidelberg, Germany.
Front Cell Dev Biol. 2021 Oct 4;9:729670. doi: 10.3389/fcell.2021.729670. eCollection 2021.
Glycosaminoglycans (GAGs) are long, linear polysaccharides that occur in the extracellular matrix of higher organisms and are either covalently attached to protein cores, as proteoglycans or in free form. Dependent on their chemical composition and structure, GAGs orchestrate a wide range of essential functions in tissue homeostasis. Accordingly, GAG-based biomaterials play a major role in tissue engineering. Current biomaterials exploit crosslinks between chemically modified GAG chains. Due to modifications along the GAG chains, they are limited in their GAG-protein interactions and accessibility to dissect the biochemical and biophysical properties that govern GAG functions. Herein, a natural presentation of GAGs is achieved by a terminal immobilization of GAGs to a polyethylene glycol (PEG) hydrogel. A physicochemical characterization showed that different end-thiolated GAGs can be incorporated within physiological concentration ranges, while the mechanical properties of the hydrogel are exclusively tunable by the PEG polymer concentration. The functional utility of this approach was illustrated in a 3D cell culture application. Immobilization of end-thiolated hyaluronan enhanced the formation of capillary-like sprouts originating from embedded endothelial cell spheroids. Taken together, the presented PEG/GAG hydrogels create a native microenvironment with fine-tunable mechanobiochemical properties and are an effective tool for studying and employing the bioactivity of GAGs.
糖胺聚糖(GAGs)是长链线性多糖,存在于高等生物的细胞外基质中,它们要么作为蛋白聚糖共价连接到蛋白核心上,要么以游离形式存在。根据其化学组成和结构,GAGs在组织稳态中协调多种重要功能。因此,基于GAG的生物材料在组织工程中发挥着重要作用。目前的生物材料利用化学修饰的GAG链之间的交联。由于GAG链上的修饰,它们在GAG-蛋白质相互作用以及剖析控制GAG功能的生化和生物物理特性方面受到限制。在此,通过将GAG末端固定到聚乙二醇(PEG)水凝胶上实现了GAG的天然呈现。物理化学表征表明,不同的末端硫醇化GAG可以在生理浓度范围内掺入,而水凝胶的机械性能仅可通过PEG聚合物浓度进行调节。这种方法的功能效用在3D细胞培养应用中得到了说明。末端硫醇化透明质酸的固定增强了源自嵌入内皮细胞球体的毛细血管样芽的形成。综上所述,所呈现的PEG/GAG水凝胶创造了一个具有可微调机械生化特性的天然微环境,是研究和利用GAG生物活性的有效工具。