Department of Biomedical Engineering, Texas A&M University, College Station, TX, 77843 USA.
Department of Molecular and Cellular Medicine, Institute for Regenerative Medicine Texas A&M Health Science Center, College Station, TX, 77807 USA.
Acta Biomater. 2020 Jan 1;101:227-236. doi: 10.1016/j.actbio.2019.11.009. Epub 2019 Nov 8.
Microporous annealed particle (MAP) hydrogels are promising materials for delivering therapeutic cells. It has previously been shown that spreading and mechanosensing activation of human mesenchymal stem cells (hMSCs) incorporated in these materials can be modulated by tuning the modulus of the microgel particle building blocks. However, the effects of degradability and functionalization with different integrin-binding peptides on cellular responses has not been explored. In this work, RGDS functionalized and enzymatically degradable poly(ethylene glycol) (PEG) microgels were annealed into MAP hydrogels via thiol-ene click chemistry and photopolymerization. During cell-mediated degradation, the microgel surfaces were remodeled to wrinkles or ridges, but the scaffold integrity was maintained. Moreover, cell spreading, proliferation, and secretion of extracellular matrix proteins were significantly enhanced in faster matrix metalloproteinase degrading (KCGPQGIWGQCK) MAP hydrogels compared to non-degradable controls after 8 days of culture. We subsequently evaluated paracrine activity by hMSCs seeded in the MAP hydrogels functionalized with either RGDS or c(RRETAWA), which is specific for α5β1 integrins, and evaluated the interplay between degradability and integrin-mediated signaling. Importantly, c(RRETAWA) functionalization upregulated secretion of bone morphogenetic protein-2 overall and on a per cell basis, but this effect was critically dependent on microgel degradability. In contrast, RGDS functionalization led to higher overall vascular endothelial growth factor secretion in degradable scaffolds due to the high cell number. These results demonstrate that integrin-binding peptides can modulate hMSC behavior in PEG-based MAP hydrogels, but the results strongly depend on the susceptibility of the microgel building blocks to cell-mediated matrix remodeling. This relationship should be considered in future studies aiming to further develop these materials for stem cell delivery and tissue engineering applications. STATEMENT OF SIGNIFICANCE: Microporous annealed particle (MAP) hydrogels are attracting increasing interest for tissue repair and regeneration and have shown superior results compared to conventional hydrogels in multiple applications. Here, we studied the impact of MAP hydrogel degradability and functionalization with different integrin-binding peptides on human mesenchymal stem cells (hMSCs) that were incorporated during particle annealing. Degradability was found to improve cell growth, spreading, and extracellular matrix production regardless of the integrin-binding peptide. Moreover, in degradable MAP hydrogels the integrin-binding peptide c(RRETAWA) was found to increase osteogenic protein expression by hMSCs compared to RGDS-functionalized MAP hydrogels. These results have important implications for the development of a MAP hydrogel-based hMSC delivery system for bone tissue engineering.
微孔退火颗粒 (MAP) 水凝胶是一种很有前途的治疗细胞输送材料。先前的研究表明,通过调整微凝胶颗粒构建块的模量,可以调节包含在这些材料中的人间充质干细胞 (hMSC) 的铺展和机械感应激活。然而,细胞反应的降解性和整合素结合肽功能化的影响尚未被探索。在这项工作中,通过硫醇-烯点击化学和光聚合将 RGDS 功能化和酶降解的聚乙二醇 (PEG) 微凝胶退火到 MAP 水凝胶中。在细胞介导的降解过程中,微凝胶表面被重塑为皱纹或脊,但支架完整性得以保持。此外,与非降解对照相比,在培养 8 天后,更快的基质金属蛋白酶降解 (KCGPQGIWGQCK) MAP 水凝胶中细胞的铺展、增殖和细胞外基质蛋白的分泌显著增强。随后,我们通过 RGDS 或专门针对 α5β1 整合素的 c(RRETAWA) 功能化的 MAP 水凝胶中接种 hMSC 来评估旁分泌活性,并评估降解性和整合素介导的信号之间的相互作用。重要的是,c(RRETAWA) 功能化整体上和每个细胞基础上均上调骨形态发生蛋白-2 的分泌,但这种效果严重依赖于微凝胶的降解性。相比之下,由于细胞数量高,RGDS 功能化导致可降解支架中血管内皮生长因子的整体分泌增加。这些结果表明,整合素结合肽可以调节基于 PEG 的 MAP 水凝胶中 hMSC 的行为,但结果强烈依赖于微凝胶构建块对细胞介导的基质重塑的敏感性。在未来旨在进一步开发这些材料用于干细胞输送和组织工程应用的研究中,应考虑这种关系。
微孔退火颗粒 (MAP) 水凝胶越来越受到组织修复和再生的关注,并且在多个应用中与传统水凝胶相比显示出更好的结果。在这里,我们研究了 MAP 水凝胶的降解性和不同整合素结合肽功能化对退火过程中包含的人骨髓间充质干细胞 (hMSC) 的影响。无论整合素结合肽如何,降解性均被发现可改善细胞生长、铺展和细胞外基质的产生。此外,在可降解的 MAP 水凝胶中,与 RGDS 功能化的 MAP 水凝胶相比,整合素结合肽 c(RRETAWA) 被发现增加了 hMSC 的成骨蛋白表达。这些结果对于开发基于 MAP 水凝胶的 hMSC 输送系统用于骨组织工程具有重要意义。