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Bidirectional differentiation of BMSCs induced by a biomimetic procallus based on a gelatin-reduced graphene oxide reinforced hydrogel for rapid bone regeneration

机译:基于明胶 - 氧化石墨烯氧化物增强水凝胶的生物微生物癌诱导的BMSCs的双向分化进行了一种快速骨再生

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摘要

Developmental engineering strategy needs the biomimetic composites that can integrate the progenitor cells, biomaterial matrices and bioactive signals to mimic the natural bone healing process for faster healing and reconstruction of segmental bone defects. We prepared the gelatin-reduced graphene oxide (GOG) and constructed the composites that mimicked the procallus by combining the GOG with the photo-crosslinked gelatin hydrogel. The biological effects of the GOG-reinforced composites could induce the bi-differentiation of bone marrow stromal cells (BMSCs) for rapid bone repair. The proper ratio of GOG in the composites regulated the composites' mechanical properties to a suitable range for the adhesion and proliferation of BMSCs. Besides, the GOG-mediated bidirectional differentiation of BMSCs, including osteogenesis and angiogenesis, could be activated through Erk1/2 and AKT pathway. The methyl vanillate (MV) delivered by GOG also contributed to the bioactive signals of the biomimetic procallus through priming the osteogenesis of BMSCs. During the repair of the calvarial defect in vivo, the initial hypoxic condition due to GOG in the composites gradually transformed into a well-vasculature robust situation with the bi-differentiation of BMSCs, which mimicked the process of bone healing resulting in the rapid bone regeneration. As an inorganic constituent, GOG reinforced the organic photo-crosslinked gelatin hydrogel to form a double-phase biomimetic procallus, which provided the porous extracellular matrix microenvironment and bioactive signals for the bi-directional differentiation of BMSCs. These show a promised application of the bio-reduced graphene oxide in biomedicine with a developmental engineering strategy.
机译:发育工程策略需要仿生复合材料,可以将祖细胞,生物材料矩阵和生物活性信号集成,以模仿天然骨愈合过程,以更快地愈合和重建节段性骨缺陷。我们制备了明胶还原的石墨烯氧化物(GOG),并通过将GOG与光交联的明胶水凝胶组合来构建模拟曲线的复合材料。 Gog-enfolced复合材料的生物学效应可以诱导骨髓基质细胞(BMSCs)的双分化,用于快速骨修复。复合材料中的Gog的适当比例将复合材料的机械性能调节至合适的BMSC的粘附和增殖范围。此外,可以通过ERK1 / 2和AKT途径激活BMSCs的GOG介导的BMSC的双向分化和血管生成。 Gog递送的甲基香草酸甲酯(MV)也通过启动BMSC的骨质发生,导致生物仿曲面的生物活性信号。在维护体内颅骨缺陷的过程中,复合材料中GOG引起的初始缺氧条件逐渐转化为BMSC的双分化血管系统的稳健情况,这模仿骨愈合过程,导致快速骨再生。作为无机成分,GOG加强了有机光交联的明胶水凝胶以形成双相杀生物曲线曲线,其提供多孔的细胞外基质微环境和BMSC的双向分化的生物活性信号。这些表现出在生物医学中的生物化石墨烯氧化物的承诺应用,具有发育工程策略。

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