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首页> 外文期刊>Biomaterials >3D cell entrapment in crosslinked thiolated gelatin-poly(ethylene glycol) diacrylate hydrogels.
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3D cell entrapment in crosslinked thiolated gelatin-poly(ethylene glycol) diacrylate hydrogels.

机译:交联的硫醇化明胶-聚(乙二醇)二丙烯酸酯水凝胶中的3D细胞截留。

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The combined use of natural ECM components and synthetic materials offers an attractive alternative to fabricate hydrogel-based tissue engineering scaffolds to study cell-matrix interactions in three-dimensions (3D). A facile method was developed to modify gelatin with cysteine via a bifunctional PEG linker, thus introducing free thiol groups to gelatin chains. A covalently crosslinked gelatin hydrogel was fabricated using thiolated gelatin and poly(ethylene glycol) diacrylate (PEGdA) via thiol-ene reaction. Unmodified gelatin was physically incorporated in a PEGdA-only matrix for comparison. We sought to understand the effect of crosslinking modality on hydrogel physicochemical properties and the impact on 3D cell entrapment. Compared to physically incorporated gelatin hydrogels, covalently crosslinked gelatin hydrogels displayed higher maximum weight swelling ratio (Q(max)), higher water content, significantly lower cumulative gelatin dissolution up to 7 days, and lower gel stiffness. Furthermore, fibroblasts encapsulated within covalently crosslinked gelatin hydrogels showed extensive cytoplasmic spreading and the formation of cellular networks over 28 days. In contrast, fibroblasts encapsulated in the physically incorporated gelatin hydrogels remained spheroidal. Hence, crosslinking ECM protein with synthetic matrix creates a stable scaffold with tunable mechanical properties and with long-term cell anchorage points, thus supporting cell attachment and growth in the 3D environment.
机译:天然ECM组件和合成材料的组合使用为制造基于水凝胶的组织工程支架提供了一种有吸引力的替代方案,以研究三维(3D)细胞-基质相互作用。开发了一种简便的方法,通过双功能PEG接头用半胱氨酸修饰明胶,从而将自由巯基引入明胶链。使用硫醇化明胶和聚乙二醇二丙烯酸酯(PEGdA)通过硫醇-烯反应制得共价交联的明胶水凝胶。将未修饰的明胶物理掺入仅PEGdA的基质中以进行比较。我们试图了解交联方式对水凝胶理化性质的影响以及对3D细胞截留的影响。与物理掺入的明胶水凝胶相比,共价交联的明胶水凝胶显示出更高的最大重量溶胀率(Q(max)),更高的水含量,显着降低了长达7天的明胶累积溶解度和更低的凝胶硬度。此外,包囊在共价交联的明胶水凝胶中的成纤维细胞在28天内显示出广泛的细胞质扩散和细胞网络的形成。相反,封装在物理掺入的明胶水凝胶中的成纤维细胞仍为球形。因此,将ECM蛋白与合成基质交联可产生具有可调机械性能和长期细胞锚定点的稳定支架,从而支持3D环境中的细胞附着和生长。

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