Hospital of Stomatology, Jilin University, Changchun 130000, China.
Jilin Provincial Key Laboratory of Tooth Development and Bone Remodeling, Jilin University, Changchun 130000, China.
J Mater Chem B. 2023 Feb 8;11(6):1288-1301. doi: 10.1039/d2tb01979e.
Peripheral nerves participate in bone growth and repair by secreting neurotransmitters, and enable new bone to possess physiological bone-sensing capability. However, it is difficult to achieve synchronized nerve regeneration during the healing process of large bone defects at present. As a bioactive nanomaterial, reduced graphene oxide (rGO) can promote neuronal differentiation and myelination of Schwann cells (SCs), while enhancing the adhesion and osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs) through its strong non-covalent binding ability. In this study, 3D printing-based rGO/GelMA hydrogels with enhanced osteogenic and neurogenic dual differentiation were used to simultaneously load SCs and BMSCs. By changing the concentration of rGO(0.03%/0.05%/0.1%), the compressive strength, rheological properties and aperture of the hydrogel can be improved. , cell live/death staining, phalloidin staining and SEM showed that cells loaded on the hydrogel had a high survival rate (85%) and good adhesion ability. , we found that the rGO/GelMA hydrogel exhibited the same low inflammatory response compared to the pure-GelMA group and the cell-only group, but surrounded by collagen fibers. Meanwhile, the osteogenic and neural proteins in the rGO/GelMA group were found to be highly expressed in immunohistochemistry and immunofluorescence. In this study, a scaffold material containing double cells was used to promote synergistic regeneration of nerves and bone, providing a promising strategy for the preparation of personalized and functionalized biomimetic bone material.
周围神经通过分泌神经递质参与骨生长和修复,并使新骨具有生理骨感知能力。然而,目前在大骨缺损的愈合过程中,很难实现神经的同步再生。作为一种生物活性纳米材料,还原氧化石墨烯(rGO)可以通过其强非共价结合能力促进施万细胞(SCs)的神经元分化和髓鞘形成,同时增强骨髓间充质干细胞(BMSCs)的黏附和成骨分化。在本研究中,使用基于 3D 打印的具有增强的成骨和成神经双重分化的 rGO/GelMA 水凝胶来同时负载 SCs 和 BMSCs。通过改变 rGO 的浓度(0.03%/0.05%/0.1%),可以提高水凝胶的抗压强度、流变性能和孔径。通过细胞死活染色、鬼笔环肽染色和 SEM 观察,发现负载在水凝胶上的细胞存活率(85%)高,黏附能力好。进一步研究发现,与纯 GelMA 组和细胞组相比,rGO/GelMA 水凝胶具有相同的低炎症反应,但周围有胶原纤维。同时,在免疫组织化学和免疫荧光染色中发现 rGO/GelMA 组的成骨和神经蛋白高度表达。在本研究中,使用含有双细胞的支架材料来促进神经和骨骼的协同再生,为制备个性化和功能化仿生骨材料提供了一种有前景的策略。