Calcium Sulfide Nanoclusters Trigger DNA Damage and Induce Cell Cycle Arrest in Non-Small-Cell Lung Adenocarcinoma

María M Figueroa Rosado1, Kevin Muñoz Forti1, Patricia Rodríguez-Rodríguez1

  • 1Department of Biology, University of Puerto Rico, Ponce 00732, Puerto Rico.

Insights

Calcium sulfide (CaS) nanoclusters selectively induce cell death in non-small-cell lung cancer (NSCLC) by increasing oxidative stress and DNA damage. This targeted approach spares healthy lung cells, offering a promising new avenue for lung cancer therapy.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Oncology

Background:

  • Lung cancer is the leading cause of cancer-related deaths globally.
  • Calcium sulfide (CaS) nanostructures have shown therapeutic potential in preclinical cancer models.
  • The selective mechanisms of CaS nanoclusters against lung cancer cells are not fully understood.

Purpose of the Study:

  • To elucidate the molecular mechanisms by which CaS nanoclusters induce cytotoxicity in non-small-cell lung carcinoma (NSCLC) cells.
  • To compare the effects of CaS nanoclusters on NSCLC cells versus healthy lung fibroblasts.
  • To investigate the role of CaS nanoclusters in DNA damage, cell cycle, oxidative stress, and repair pathways.

Main Methods:

  • Investigated DNA damage, cell cycle progression, oxidative stress markers, and cellular repair mechanisms.
  • Utilized NSCLC cells and healthy lung fibroblasts for comparative analysis.
  • Analyzed the pH-dependent effects of CaS nanoclusters in acidic microenvironments.

Main Results:

  • CaS nanoclusters dissociate into Ca2+ and H2S in acidic tumor microenvironments, increasing intracellular calcium.
  • Elevated calcium levels trigger oxidative stress and inhibit DNA repair in NSCLC cells.
  • CaS nanoclusters selectively arrest NSCLC cells in G0-G1 and S phases without affecting healthy cells.
  • The selective cytotoxicity is mediated by increased Ca2+ and ROS, leading to DNA double-strand breaks.

Conclusions:

  • CaS nanoclusters exhibit pH-dependent, selective cytotoxicity against NSCLC cells.
  • These nanoclusters disrupt genomic stability and induce cell cycle arrest, potentially leading to cell death.
  • CaS nanoclusters represent a novel therapeutic strategy for lung cancer, minimizing damage to healthy tissues.

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