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Published on: February 9, 2021
Benzodioxin-Annulated Naphthalimides as Potent DNA Replication Stress Inducers with Dual p53-Dependent and
Zlatina Vlahova1, Lazar Lazarov1, Maria Petrova1
1Institute of Molecular Biology "Akad. Roumen Tsanev", Bulgarian Academy of Sciences, Acad. G. Bonchev Str., bl. 21, 1113 Sofia, Bulgaria.
Abstract:
Background/Objectives: The development of small-molecule agents that selectively target DNA replication remains a central strategy in anticancer drug discovery. In this study, we report the biological characterization of a novel 6-nitro-benzodioxin-naphthalimide (NI) derivative (compound 5a), evaluated as a potential DNA-targeted anticancer lead. Methods/Results: The antiproliferative activity of 5a was assessed in a small panel of human lung carcinoma cell models (A549, H1299) and a non-malignant control (MRC-5), revealing pronounced cytotoxic effects in tumor cells, accompanied by favorable selectivity indices. Mechanistic investigations demonstrated that treatment with 5a results in strong inhibition of DNA synthesis, as evidenced by a marked reduction in EdU incorporation and a robust induction of the DNA damage marker γH2AX. These effects were associated with cell-cycle perturbations characterized by accumulation in G1 and G2/M phases, followed by activation of apoptotic pathways. Importantly, clonogenic survival assays confirmed that even transient exposure to 5a leads to a sustained loss of proliferative capacity, indicating irreversible long-term cellular damage. These results support a replication stress-driven mechanism of action for compound 5a, consistent with interference in DNA-associated processes during S phase. Conclusions: While the precise molecular initiating event remains to be elucidated, the observed biological profile positions 5a as a promising DNA-targeted lead structure with potential for further pharmaceutical optimization. These findings provide a solid foundation for the continued development of naphthalimide-based compounds as anticancer agents within a pharmaceutically relevant framework.
Insights
A novel naphthalimide derivative, compound 5a, shows potent anticancer activity by inhibiting DNA replication and inducing cell death in lung cancer cells. This DNA-targeted agent demonstrates promise for further drug development.
Area of Science:
- Medicinal Chemistry
- Molecular Biology
- Cancer Research
Background:
- Targeting DNA replication is a key strategy in anticancer drug discovery.
- Novel small-molecule agents are continually sought for improved cancer therapies.
Purpose of the Study:
- To biologically characterize a new 6-nitro-benzodioxin-naphthalimide derivative (compound 5a).
- To evaluate compound 5a as a potential DNA-targeted anticancer lead.
Main Methods:
- Assessed antiproliferative activity in lung carcinoma cell lines (A549, H1299) and a non-malignant control (MRC-5).
- Investigated mechanism of action via EdU incorporation, DNA damage marker (γH2AX) analysis, cell-cycle progression, and apoptosis.
- Evaluated long-term cellular damage using clonogenic survival assays.
Main Results:
- Compound 5a exhibited significant cytotoxicity in tumor cells with favorable selectivity.
- Demonstrated strong inhibition of DNA synthesis and induction of DNA damage.
- Caused cell-cycle arrest in G1 and G2/M phases, leading to apoptosis.
- Transient exposure resulted in irreversible loss of proliferative capacity, indicating replication stress.
Conclusions:
- Compound 5a acts via a replication stress-driven mechanism, interfering with DNA processes.
- The observed biological profile supports 5a as a promising DNA-targeted lead structure.
- Naphthalimide-based compounds warrant further development as anticancer agents.
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