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Updated: Sep 12, 2025

Synthesis of Graphene-Hydroxyapatite Nanocomposites for Potential Use in Bone Tissue Engineering
Published on: July 27, 2022
Study on the effect of sustained -release icariin-loaded Graphene oxide-hydrogel composite scaffold on bone defect
Qingdi Qu1, Qian Zhang1, Mengyuan Wang2
1Department of Endodontics, The First Affiliated Hospital of Harbin Medical University, Harbin, People's Republic of China.
Abstract:
In orthopedic treatment, long-term nonunion of bone defects has always been a significant issue. As bone graft materials, tetra-armed polyethylene glycol (Tetra-PEG) hydrogel scaffolds are anticipated to address this issue due to their extracellular matrix (ECM)-like structure. However, poor osteoinductivity and cell adhesion after implantation restricted its clinical application in bone tissue engineering. Herein, graphene oxide (GO) loaded with icariin (ICA) was loaded into the Tetra-PEG hydrogel semi-interpenetrating network composite gel byin situcomposite approach, and silk fibroin (SF) was incorporated to create a new organic-inorganic composite hydrogel scaffold (PNSG-ICA) to investigate the controlled drug release characteristics and osteogenic properties. The experiments of this study demonstrate that PNSG-ICA scaffolds can effectively encapsulate and release ICA over a period of 12 days. The scaffolds exhibited interconnected porous microarchitectures, satisfactory mechanical properties, appropriate degradation characteristics, and excellent biocompatibility.In vitroanalyses indicated that ICA-doped hydrogels significantly enhanced the osteogenic differentiation of rat bone mesenchymal stem cells (rBMSCs), as demonstrated by alkaline phosphatase and alizarin red staining, as well as qRT-PCR assessments. Moreover,in vivoinvestigations revealed that the ICA sustained-release system significantly enhanced the regeneration of bone defects mediated by rBMSCsin situ, as evidenced by mouse calvarial bone defect models. In summary, we envision that the prolonged release of ICA from PNSG-ICA scaffolds may become a new strategy for the clinical treatment of bone defects.
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