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Published on: May 26, 2023
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.
Abstract:
Lung cancer remains the most common malignancy independent of sex. Here, we focused on unraveling the molecular mechanisms of CaS nanoclusters inducing cytotoxicity by investigating DNA damage, the cell cycle, oxidative stress, and cellular repair mechanisms in non-small-cell lung carcinoma (NSCLC) cells compared to healthy lung fibroblasts. Our previous studies have demonstrated the therapeutic potential of calcium sulfide (CaS) nanostructures in skin and breast cancer models, leading to a significant reduction in cancer cell proliferation. However, how CaS nanoclusters enhance their therapeutic effects on cancer cells while minimizing damage to healthy cells remains unknown. Our results show that CaS nanoclusters, once dissociated into Ca2+ and H2S in an acidic microenvironment, selectively allow extracellular calcium to enter, leading to an increase in free calcium entry, triggering oxidative stress and limiting DNA repair mechanisms in NSCLC. Furthermore, CaS nanoclusters selectively arrest NSCLC cells in the G0-G1 and S phases of the cell cycle without affecting healthy cells' cycles. Here, we also show that the selective effects of CaS nanoclusters on lung adenocarcinoma are less likely to be regulated by intrinsic apoptotic or mitochondrial pathways. They are, rather, caused by an increase in Ca2+ and ROS, causing double-stranded DNA breakages. This selectivity for malignant cells is pH-dependent because it occurs in the acidic microenvironment characteristic of these cells. Overall, this is the first piece of evidence that CaS disrupts genomic stability, prevents the replication of damaged cells, and ultimately influences cell fate decisions such as cell cycle arrest or cell death including mitotic catastrophe and necroptotic simultaneous events.
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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