E7 peptide and magnesium oxide-functionalized coaxial fibre membranes enhance the recruitment of bone marrow mesenchymal stem cells and promote bone regeneration
BackgroundThe repair of bone defects remains a significant clinical challenge. Although magnesium (Mg)-based biomimetic scaffolds are widely utilized for bone defect repair, the release of Mg-2(+) ions often leads to an alkaline microenvironment, thereby adversely affecting bone regeneration. Regenerative medicine strategies that leverage the recruitment of endogenous bone marrow mesenchymal stem cells (BMSCs) offer a novel approach to treating bone defects.MethodsIn this study, we employed poly(L-lactic acid) (PLLA) and polyethylene glycol (PEG) as shell materials and nanomagnesium oxide (nMgO) combined with gelatin (G) as core materials to fabricate coaxial fibre membranes with a "core-shell" structure via coaxial electrospinning technology. Additionally, we grafted the BMSC-affinitive peptide E7 (EPLQLKM) onto the fibres to achieve specific recruitment of endogenous BMSCs.ResultsMorphological and structural analyses confirmed the successful formation of the "core-shell" structure of the fibre membranes. Grafting E7 peptides enhanced the hydrophilicity and mechanical properties of the fibre membranes and maintained pH stability in vitro. In vitro experiments demonstrated that the functionalized fibre membranes significantly promoted BMSC proliferation, migration, and osteogenic differentiation. When implanted into a rat cranial defect model, we observed the formation of new bone tissue and the repair of the bone defect.ConclusionsE7 peptide-functionalized coaxial fibre membranes effectively facilitated bone defect repair by promoting the recruitment and osteogenic differentiation of BMSCs, demonstrating substantial potential for tissue engineering applications.
基金:
This study was supported by The National Natural Science Foundation of China (Grant number: 82460428, 82460421, 82160417, 2025JJ81034), the 76th Batch of the China Postdoctoral Science Foundation General Funding- Regional Special Support Program (Grant number: 2024MD763983), Yunnan Provincial Department of Science and Technology-Kunming Medical University Joint Special Fund for Basic Research General Program (Grant number: 202501AY070001-166), Project Contract of Science and Technology Plan of Yunnan Provincial Department of Science and Technology(Grant number: 202402AD080006), Yunnan Health Training Project of High Level talents (Grant number: H-2024026), Youth Project of Yunnan Basic Research Programme of Yunnan Provincial Department of Science and Technology (Grant number: 202401AU070046), Teachers’ Project of Scientific Research Fund of Yunnan Provincial Department of Education- Special Project on Basic Research for Young Talents (Grant number: 2024J0180), The fifth batch of "535" young academic backbone training subjects of the First Affiliated Hospital of Kunming Medical University (Grant number: 2025535Q08), 2024 Yunnan Province "Colorful Cloud Postdoctoral Program" Innovation Project. Yunnan Provincial Education Department Scientific Research Fund(Grant number: 2024Y249, 2025Y0373).Clinical Medical Technology Innovation Guidance Project of Hunan Province(Grant number: 2021SK51717).Kunming Medical University Graduate Innovation Fund Project(Grant number: 2025B038).
第一作者机构:[1]Qujing First Peoples Hosp, Orthoped, Qujing 655000, Yunnan, Peoples R China
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推荐引用方式(GB/T 7714):
Long Shengyu,Wang Wentong,Chen Yongcheng,et al.E7 peptide and magnesium oxide-functionalized coaxial fibre membranes enhance the recruitment of bone marrow mesenchymal stem cells and promote bone regeneration[J].BMC BIOTECHNOLOGY.2025,25(1):doi:10.1186/s12896-025-01017-w.
APA:
Long, Shengyu,Wang, Wentong,Chen, Yongcheng,Wang, Zhihua,Duan, Hao...&He, Fei.(2025).E7 peptide and magnesium oxide-functionalized coaxial fibre membranes enhance the recruitment of bone marrow mesenchymal stem cells and promote bone regeneration.BMC BIOTECHNOLOGY,25,(1)
MLA:
Long, Shengyu,et al."E7 peptide and magnesium oxide-functionalized coaxial fibre membranes enhance the recruitment of bone marrow mesenchymal stem cells and promote bone regeneration".BMC BIOTECHNOLOGY 25..1(2025)