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.
Abstract:
Pancreatic cancer is a hard-to-treat tumor with a poor prognosis. While traditional pancreatic cancer therapies can be effective, issues like cytotoxicity, low selectivity, and drug resistance still pose major challenges. Nanotechnology has shown promise in improving cancer diagnosis and treatment. Yttrium oxide nanoparticles (Y2O3-NPs), for example, have demonstrated potent selective cytotoxicity against triple negative breast cancer cells; but their effects on pancreatic cancer cells have not been explored. This study aimed to explore the impact of Y2O3-NPs on cell proliferation, DNA integrity, and oxidative stress in pancreatic cancer (PANC-1) and human skin fibroblast (HSF) cells. The cytotoxicity of Y2O3-NPs after 72 h were estimated using Sulforhodamine (SRB) cytotoxicity assay, while alkaline Comet assay was done to study genomic DNA integrity. Generation level of reactive oxygen species (ROS) and integrity of mitochondrial membrane potential were also analyzed. Apoptosis induction was investigated using Flow Cytometry and expression level of apoptotic (p53), anti-apoptotic (Bcl2) and mitochondrial (ND3) genes was measured using quantitative RTPCR. Our findings exhibited that Y2O3-NPs had strong selective cytotoxicity against PANC-1 cells with an IC50 value of 31.06 µg/ml, while having minimal effect on normal HSF cells (IC50 = 319.21 µg/ml). Treatment of PANC-1 cells with Y2O3-NPs at the IC50 concentration for 72 h significantly increased intracellular ROS levels and DNA damage, along with a notable reduction in mitochondrial membrane potential. Additionally, a significant rise in necrotic, early, and late apoptotic cells was observed, accompanied by downregulation of the anti-apoptotic Bcl2 gene and upregulation of the apoptotic p53 and mitochondrial ND3 genes. These findings highlight the selective toxicity of Y2O3-NPs towards cancerous PANC-1 cells, with minimal impact on normal cells. Y2O3-NPs appear to induce apoptosis in cancer cells by increasing ROS generation, damaging DNA, disrupting mitochondrial function, and triggering cell death. This study suggests that Y2O3-NPs may be a promising candidate for pancreatic cancer treatment. Further research is needed to fully explore their therapeutic potential.
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.


