Multifunctional Mesoporous Silica Nanoparticles Reinforced Silk Fibroin Composite with Antibacterial and Osteogenic Effects for Infectious Bone Rehabilitation

Int J Nanomedicine. 2022 Nov 25:17:5661-5678. doi: 10.2147/IJN.S387347. eCollection 2022.

Abstract

Background: Existing implant materials cannot meet the essential multifunctional requirements of repairing infected bone defects, such as antibacterial and osteogenesis abilities. A promising strategy to develop a versatile biomimicry composite of the natural bone structure may be accomplished by combining a multifunctional nanoparticle with an organic scaffold.

Methods: In this study, a quaternary ammonium silane-modified mesoporous silica containing nano silver (Ag@QHMS) was successfully synthesized and further combined with silk fibroin (SF) to fabricate the multifunctional nano-reinforced scaffold (SF-Ag@QHMS) using the freeze-drying method. Furthermore, the antibacterial and osteogenic effects of this composite were evaluated in vitro and in vivo.

Results: SF-Ag@QHMS inherited a three-dimensional porous structure (porosity rate: 91.90 ± 0.62%) and better mechanical characteristics (2.11 ± 0.06 kPa) than that of the SF scaffold (porosity rate: 91.62 ± 1.65%; mechanic strength: 2.02 ± 0.01 kPa). Simultaneously, the introduction of versatile nanoparticles has provided the composite with additional antibacterial ability against Porphyromonas gingivalis, which can be maintained for 15 days. Furthermore, the expression of osteogenic-associated factors was up-regulated due to the silver ions eluting from the composite scaffold. The in vivo micro-CT and histological results indicated that the new bone formation was not only localized around the border of the defect but also arose more in the center with the support of the composite.

Conclusion: The multifunctional silver-loaded mesoporous silica enhanced the mechanical strength of the composite while also ensuring greater and sustained antibacterial and osteogenic properties, allowing the SF-Ag@QHMS composite to be used to repair infected bone defects.

Keywords: composite scaffold; multifunctional; nano-reinforce; quaternary ammonium silane; silk fibroin.

MeSH terms

  • Anti-Bacterial Agents / pharmacology
  • Communicable Diseases*
  • Fibroins*
  • Humans
  • Multifunctional Nanoparticles*
  • Nanoparticles*
  • Osteogenesis
  • Silicon Dioxide

Substances

  • Fibroins
  • Silicon Dioxide
  • Anti-Bacterial Agents

Grants and funding

This work was funded by Startup Fund for Scientific Research, Fujian Medical University (Grant number: 2021QH1134), and the Nature Science Foundation of Fujian Province (Grant number: 2022J01768).