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Antiproliferative Aspect of Benzimidazole Derivatives' Activity and Their Impact on NF-κB Expression
Katarzyna Błaszczak-Świątkiewicz1
1Department of Applied Pharmacy, Medical University of Lodz, Muszynskiego 1, 90-151 Lodz, Poland. katarzyna.blaszczak-swiatkiewicz@umed.lodz.pl.
Abstract:
Benzimidazoles belong to a new class of bioreductive agents with cytotoxic activity towards solid tumor cells, especially in their first stage of growth, which is characterized by low oxygen concentration. Bioreductive agents represent a class of prodrugs that target hypoxic tumor cells. Their bioactivity depends on the reactivity of their functional chemical groups. Their efficacy requires metabolic reduction and subsequent generation of toxic prodrugs. Chemoresistance of tumor cells is a major problem for successful antitumor therapy for many types of tumors, especially for breast cancer. The present study was performed to assess the effect of the antiproliferation activity of the tested benzimidazoles by way of NF-κB expression inhibition. The activity of the tested compounds on T47D and MCF7 cells was examined by WST, western blot, NF-κB transactivation assay, and apoptotic cell population analysis. Compound 3 was highly cytotoxically active against T47D cells, especially in hypoxic conditions. Its IC50 of 0.31 ± 0.06 nM, although weaker than tirapazamine, was significantly higher than the other tested compounds (2.4-3.0 fold). The increased bax protein expression upon exposure to the tested compounds indicated intercellular apoptotic pathway activity, with tumor cell death by way of apoptosis. Increased bax protein synthesis and apoptotic cell dominance upon treatment, especially with N-oxide derivatives (92% apoptotic cells among T47D cell populations during treatment with compound 3), were correlated with each other. Additionally, both increased bax protein and decreased NF-κB protein expression supported antiproliferative activity via NF-κB-DNA binding inhibition associated with the tested compounds. Compound 3 appeared to be the strongest inhibitor of NF-κB expression in hypoxic conditions (the potency against NF-κB expression was about 75% of that of tirapazamine). The present studies involving this class of heterocyclic small molecules proved their potential usefulness in anticancer therapy as compounds be able to limit tumor cell proliferation and reverse drug resistance by NF-κB repression.
Insights
New benzimidazole compounds show potent anticancer activity by inhibiting NF-κB expression and inducing apoptosis in hypoxic tumor cells. These bioreductive agents offer promise for overcoming chemoresistance, particularly in breast cancer treatment.
Area of Science:
- Biochemistry
- Pharmacology
- Oncology
Background:
- Benzimidazoles are bioreductive prodrugs targeting hypoxic tumor cells.
- Tumor chemoresistance, especially in breast cancer, remains a significant therapeutic challenge.
- Targeting the NF-κB pathway is a strategy to overcome drug resistance and inhibit proliferation.
Purpose of the Study:
- To evaluate the antiproliferative activity of novel benzimidazole derivatives.
- To assess their efficacy under hypoxic conditions, mimicking solid tumors.
- To investigate their mechanism of action, focusing on NF-κB inhibition and apoptosis induction.
Main Methods:
- In vitro testing on T47D and MCF7 breast cancer cell lines.
- Cytotoxicity assessed by WST assay and IC50 determination.
- Mechanism explored via western blot, NF-κB transactivation assay, and apoptotic cell analysis.
Main Results:
- Compound 3 exhibited potent cytotoxicity against T47D cells under hypoxia (IC50 = 0.31 ± 0.06 nM).
- Treatment increased BAX protein expression, indicating apoptosis induction (up to 92% apoptotic cells with compound 3).
- Compounds significantly inhibited NF-κB expression and DNA binding, correlating with antiproliferative effects.
Conclusions:
- Benzimidazole derivatives, particularly compound 3, demonstrate significant potential as anticancer agents.
- Their ability to induce apoptosis and inhibit NF-κB offers a strategy to combat chemoresistance.
- These compounds represent promising candidates for developing novel therapies against solid tumors.
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