Zn2SnO4@SiO2@5-FU Nanoparticles as an Additive for Maxillary Bone Defects

Int J Mol Sci. 2024 Dec 29;26(1):194. doi: 10.3390/ijms26010194.

Abstract

This study investigates the synthesis of Zn2SnO4@SiO2@5-FU nanoparticles as an additive for bone fillers in dental maxillofacial reconstruction. Zn2SnO4 nanoparticles were synthesized and coated with a SiO2 shell, followed by the incorporation of 5-Fluorouracil (5-FU), aimed at enhancing the therapeutic properties of classical fillers. Structural analysis using X-ray diffraction confirmed that Zn2SnO4 was the single crystalline phase present, with its crystallinity preserved after both SiO2 coating and 5-FU incorporation. SEM characterization revealed the micro-spherical particles of Zn2SnO4 assembled by an agglomeration of nanorods, exhibiting dimensions and morphological characteristics that were consistent after the addition of both the SiO2 shell and 5-FU. Fourier-transformed infrared spectroscopy provided solid proof of the successful synthesis of Zn2SnO4, Zn2SnO4@SiO2, and Zn2SnO4@SiO2@5-FU, confirming the presence of expected functional groups. The SiO2 layer improved nanoparticle stability in the solution, as indicated by zeta potential measurements, while adding 5-FU significantly increased biocompatibility and targeting efficiency. The existence of the SiO2 shell and 5-FU is also confirmed by the hydrodynamic diameter, indicating an increase in particle size after incorporating both compounds. Antibacterial assays demonstrated a selective efficacy against Gram-positive bacteria, with Zn2SnO4@SiO2@5-FU showing the strongest inhibitory effects. Biofilm inhibition studies further confirmed the nanoparticles' effectiveness in preventing bacterial colonization. Cytotoxicity tests on the A-431 human epidermoid carcinoma cell line revealed a dose-dependent reduction in cell viability, highlighting the potential of 5-FU for targeted cancer treatment. These findings highlight the potential of Zn2SnO4@SiO2@5-FU nanoparticles as a multifunctional additive for bone fillers, offering enhanced antimicrobial and antitumor capabilities.

Keywords: 5-Fluorouracil; A-431 cell line; SiO2 coating; Zn2SnO4 nanoparticles; antibacterial activity; antitumor therapy; biofilm inhibition; biomedical applications; drug delivery; nanoparticle stability.

MeSH terms

  • Anti-Bacterial Agents* / chemistry
  • Anti-Bacterial Agents* / pharmacology
  • Fluorouracil* / chemistry
  • Fluorouracil* / pharmacology
  • Humans
  • Maxilla / drug effects
  • Nanoparticles / chemistry
  • Silicon Dioxide* / chemistry

Substances

  • Fluorouracil
  • Silicon Dioxide
  • Anti-Bacterial Agents