4.8 Article

ZnO/Nanocarbons-Modified Fibrous Scaffolds for Stem Cell-Based Osteogenic Differentiation

期刊

SMALL
卷 16, 期 38, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202003010

关键词

anti-infective surfaces; carbon nanomaterials; metal-organic frameworks; nanostructured fibrous scaffolds; osteogenic surfaces; stem cells

资金

  1. National Key R&D Program of China [2019YFA0110600, 2019YFA0110601]
  2. Deutsche Forschungsgemeinschaft (DFG) through Collaborative Research Center [(SFB) 765]
  3. China Scholarship Council (CSC)
  4. State Key Laboratory of Polymer Materials Engineering [sklpme2019-2-03]
  5. Science and Technology Project of Sichuan Province [2020YFH0087, 2020YJ0055]
  6. Fundamental Research Funds for the Central Universities
  7. Alexander von Humboldt Fellowship
  8. Special Funds for Prevention and Control of COVID-19 of SKLFPM, Donghua University [YJ202005]
  9. Sichuan University [2020scunCoV-YJ-20005]
  10. DRS POINT Fellowship
  11. Key Laboratory of Emergency and Trauma, Ministry of Education [KLET-201907]
  12. Thousand Youth Talents Plan
  13. Projekt DEAL

向作者/读者索取更多资源

Currently, mesenchymal stem cells (MSCs)-based therapies for bone regeneration and treatments have gained significant attention in clinical research. Though many chemical and physical cues which influence the osteogenic differentiation of MSCs have been explored, scaffolds combining the benefits of Zn(2+)ions and unique nanostructures may become an ideal interface to enhance osteogenic and anti-infective capabilities simultaneously. In this work, motivated by the enormous advantages of Zn-based metal-organic framework-derived nanocarbons, C-ZnO nanocarbons-modified fibrous scaffolds for stem cell-based osteogenic differentiation are constructed. The modified scaffolds show enhanced expression of alkaline phosphatase, bone sialoprotein, vinculin, and a larger cell spreading area. Meanwhile, the caging of ZnO nanoparticles can allow the slow release of Zn(2+)ions, which not only activate various signaling pathways to guide osteogenic differentiation but also prevent the potential bacterial infection of implantable scaffolds. Overall, this study may provide new insight for designing stem cell-based nanostructured fibrous scaffolds with simultaneously enhanced osteogenic and anti-infective capabilities.

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