Laboratory of Biomaterials and Regenerative Medicine, Academy for Advanced Interdisciplinary Studies, Peking University, Beijing 100871, China and Department of Oral and Maxillofacial Surgery, Central Laboratory, Peking University School and Hospital of Stomatology, Beijing 100081, China.
Department of Oral and Maxillofacial Surgery, Central Laboratory, Peking University School and Hospital of Stomatology, Beijing 100081, China.
J Mater Chem B. 2021 Aug 4;9(30):6056-6067. doi: 10.1039/d1tb01175h.
Due to the ability to combine multiple osteogenic induction "cues" at the same time, hydrogels are widely used in the three-dimensional (3D) culture of human mesenchymal stem cells (hMSCs) and osteoinduction. However, the survival and proliferation of stem cells in a 3D culture system are limited, which reduces their osteogenic differentiation efficiency. In addition, the cells inside the hydrogel are prone to apoptosis due to hypoxia, which is a serious challenge for tissue engineering based on stem cells. In this study, a tripeptide-based macroporous alginate hydrogel was prepared to improve the osteogenic microenvironment of stem cells. The arginine-glycine-aspartate (RGD) peptide promoted the adhesion and proliferation of stem cells, and the degradation of gelatin microspheres (GMs) produced a macroporous structure to enhance further the migration and aggregation of stem cells. Mesoporous silica nanoparticles (MSNs) sustained-release bone-forming peptide-1 (BFP-1) induced osteogenic differentiation, and the sustained release of the QK peptide from the GMs promoted angiogenesis. In vitro experiments have shown that this functionalized hydrogel stimulates the proliferation of hMSCs, encourages larger cell cluster formation, and enhances the osteogenic differentiation efficiency. The released QK facilitates the proliferation and migration of endothelial cells. In vivo experiments have also verified that this system has a better osteogenic effect, and more blood vessels were observed inside the hydrogel, than in other systems. In general, this research has led to the development of a tripeptide macroporous hydrogel that can simultaneously promote osteogenesis and angiogenesis, showing great promise for applications of 3D cultures and stem cell-based tissue engineering.
由于能够同时结合多种成骨诱导“线索”,水凝胶被广泛应用于三维(3D)培养人骨髓间充质干细胞(hMSCs)和诱导成骨。然而,3D 培养系统中干细胞的存活和增殖受到限制,从而降低了它们的成骨分化效率。此外,水凝胶内部的细胞由于缺氧容易发生凋亡,这是基于干细胞的组织工程面临的一个严重挑战。在这项研究中,制备了一种基于三肽的大孔海藻酸钠水凝胶,以改善干细胞的成骨微环境。精氨酸-甘氨酸-天冬氨酸(RGD)肽促进干细胞的黏附和增殖,明胶微球(GMs)的降解产生大孔结构,进一步增强干细胞的迁移和聚集。介孔硅纳米粒子(MSNs)持续释放成骨肽-1(BFP-1)诱导成骨分化,GMs 中 QK 肽的持续释放促进血管生成。体外实验表明,这种功能化水凝胶刺激 hMSCs 的增殖,促进更大的细胞团形成,并增强成骨分化效率。释放的 QK 促进内皮细胞的增殖和迁移。体内实验也验证了该系统具有更好的成骨效果,并且在水凝胶内部观察到更多的血管。总的来说,这项研究开发了一种能够同时促进成骨和血管生成的三肽大孔水凝胶,为 3D 培养和基于干细胞的组织工程的应用带来了广阔的前景。