A thiazole-based hydroxamic acid derivative induces mitochondrial apoptosis and S-phase arrest in MCF-7 cells via DNA
Tanima Das1, Diya Ghosh1, Suvankar Karmakar2
1Department of In Vitro Carcinogenesis and Cellular Chemotherapy, Chittaranjan National Cancer Institute, Kolkata 700026, India.
Abstract:
Breast cancer remains a leading cause of cancer-related mortality in women globally. Approved chemotherapeutics, while effective, are associated with severe side effects, necessitating the development of safer, more targeted treatments. Our present study investigated the therapeutic potential of a thiazole-based hydroxamic acid derivative, 1, against MCF-7 breast cancer cells. 1 exhibited potent cytotoxicity with an IC50 of 21.18 ± 2.01 μM, comparable to the cytotoxicity of doxorubicin IC50 of 18.08 ± 1.20 μM, yet demonstrated excellent selectivity with no significant cytotoxicity towards normal MCF-10A epithelial cells (62.37 ± 1.01 μM). Swiss ADME analysis confirmed its favourable drug-likeness and non-PgP substrate status. Flow cytometric analysis confirmed that 1 demonstrated substantial apoptotic cell death, inducing 45 % apoptosis compared to 2.62 % in the control group, by 75.8 % mitochondrial membrane depolarization and S-phase cell cycle arrest (with cell accumulation reaching 30.1 % at 24 h). Spectroscopic and computational studies inferred the minor-groove binding ability of 1 towards CT-DNA. Immunoblotting confirmed the DNA damage response (upregulation of γH2AX and p-ATM expression) which activated the intrinsic apoptotic pathway (upregulation of p53 and Bax/Bcl-2 ratio from 1.1 in control to 4 following treatment and cleaved caspase-7). The induction of DNA damage was also visualized by increase in the comet tail moment (1 induced a tail moment of 54.75 ± 1.50 vs. 11.79 ± 2.23 for control). Subacute toxicity in BALB/c mice confirmed 1's safety, with no adverse liver, renal, biochemical or hematological effects up to 10 mg/kg. Collectively, the findings identify 1's potential as a chemotherapeutic lead agent for breast cancer.
Insights
A novel thiazole-based hydroxamic acid derivative, compound 1, shows potent and selective anticancer activity against breast cancer cells. This promising agent induces apoptosis and DNA damage with minimal toxicity, suggesting its potential as a new breast cancer therapeutic.
Area of Science:
- Medicinal Chemistry
- Oncology
- Molecular Biology
Background:
- Breast cancer is a leading cause of cancer mortality globally.
- Current chemotherapeutics have severe side effects, driving the need for safer, targeted treatments.
Purpose of the Study:
- To investigate the therapeutic potential of a thiazole-based hydroxamic acid derivative (compound 1) against MCF-7 breast cancer cells.
- To evaluate the selectivity, mechanism of action, and in vivo safety of compound 1.
Main Methods:
- Cytotoxicity assays (IC50) against MCF-7 and MCF-10A cells.
- Swiss ADME analysis for drug-likeness.
- Flow cytometry for apoptosis and cell cycle analysis.
- Spectroscopic and computational studies for DNA binding.
- Immunoblotting for DNA damage and apoptosis markers.
- Subacute toxicity study in BALB/c mice.
Main Results:
- Compound 1 exhibited potent cytotoxicity against MCF-7 cells (IC50 = 21.18 μM), comparable to doxorubicin, with high selectivity over normal cells (IC50 = 62.37 μM).
- Compound 1 induced significant apoptosis (45%), mitochondrial membrane depolarization, and S-phase arrest.
- Mechanism involves minor-groove binding to CT-DNA, leading to DNA damage (upregulation of γH2AX, p-ATM) and activation of the intrinsic apoptotic pathway (p53, Bax/Bcl-2 ratio, cleaved caspase-7).
- Subacute toxicity studies in mice showed no adverse effects up to 10 mg/kg.
Conclusions:
- Compound 1 demonstrates significant potential as a chemotherapeutic lead agent for breast cancer due to its potent efficacy, selectivity, and favorable safety profile.
- Further investigation into compound 1 is warranted for its development as a novel breast cancer treatment.
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