Yttrium oxide nanoparticles induce selective cytotoxicity, genomic instability and ROS mitochondrial P53 mediated

Hanan R H Mohamed1, George M Hakeem2, Yasmin Abdel Latif2

  • 1Department of Zoology, Faculty of Science, Cairo University, Giza, Egypt. hananeeyra@cu.edu.eg.

Scientific Reports
|June 20, 2025
PubMed

Insights

Yttrium oxide nanoparticles (Y2O3-NPs) show selective toxicity against pancreatic cancer cells, inducing DNA damage and apoptosis. These nanoparticles offer a promising avenue for pancreatic cancer treatment with minimal impact on healthy cells.

Area of Science:

  • Biomedical Nanotechnology
  • Cancer Research
  • Molecular Biology

Background:

  • Pancreatic cancer presents significant treatment challenges due to poor prognosis, cytotoxicity, low selectivity, and drug resistance associated with traditional therapies.
  • Nanotechnology offers potential advancements in cancer diagnosis and treatment, with Yttrium oxide nanoparticles (Y2O3-NPs) previously showing selective cytotoxicity against other cancer types.

Purpose of the Study:

  • To investigate the effects of Yttrium oxide nanoparticles (Y2O3-NPs) on pancreatic cancer cells (PANC-1) and normal human skin fibroblast (HSF) cells.
  • To evaluate the impact of Y2O3-NPs on cell proliferation, DNA integrity, oxidative stress, and apoptosis in pancreatic cancer.

Main Methods:

  • Sulforhodamine (SRB) cytotoxicity assay to determine IC50 values.
  • Alkaline Comet assay for assessing genomic DNA integrity.
  • Analysis of reactive oxygen species (ROS) generation and mitochondrial membrane potential.
  • Flow cytometry for apoptosis induction and quantitative RT-PCR for gene expression (p53, Bcl2, ND3).

Main Results:

  • Y2O3-NPs exhibited selective cytotoxicity against PANC-1 cells (IC50 = 31.06 µg/ml) with minimal effect on HSF cells (IC50 = 319.21 µg/ml).
  • Treatment with Y2O3-NPs significantly increased ROS levels, DNA damage, and apoptosis in PANC-1 cells.
  • Downregulation of Bcl2 and upregulation of p53 and ND3 genes were observed, indicating apoptotic pathway activation.

Conclusions:

  • Yttrium oxide nanoparticles demonstrate potent and selective cytotoxicity against pancreatic cancer cells.
  • Y2O3-NPs induce apoptosis in pancreatic cancer cells through ROS generation, DNA damage, and mitochondrial dysfunction.
  • Y2O3-NPs represent a promising therapeutic candidate for pancreatic cancer, warranting further investigation.