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Published on: October 11, 2013
Carvedilol serves as a novel CYP1B1 inhibitor, a systematic drug repurposing approach through structure-based virtual
Ying Wang1, Xiaomei He1, Chunshi Li2
1Wuya College of Innovation, Shenyang Pharmaceutical University, Shenyang, Liaoning, 110016, China.
Abstract:
Cytochrome P450 1B1 (CYP1B1) is a promising target for prevention and therapy of cancer, particularly those with drug resistance, stimulating cancer cell survival, and promoting cancer resistance. In view of the extreme complexity and high risk in drug discovery and development, a drug repurposing strategy was applied in the present study to find potential CYP1B1 inhibitors through structure-based virtual screening in the FDA database. Intriguingly, after a thorough assessment of docking scores, binding affinities, as well as binding modes, six compounds were highlighted for further verification. In fact, both carvedilol and indacaterol showed inhibitory activity towards human CYP1B1 with the IC50 of 1.11 μM and 59.52 μM, respectively, according to EROD assay; however, neither docking score nor the detailed binding mode of carvedilol in the hit pose dictated to be a superior CYP1B1 inhibitor to indacaterol, which called for the necessity to re-access the binding mode of carvedilol. Thus, the top two representative docking poses of carvedilol were re-assessed. Indeed, compared to the one hit in the virtual screening (due to a false positive Glide gscore), the other docking pose exhibited ideal performance in both molecular dynamics (MD) simulation, binding free energy, and density functional theory (DFT) calculation evaluations. This identification of the exact binding pose of carvedilol is not only essential for a better understanding of the mechanism underlying its activity, but also contributes to uncovering the structure-activity relationship of CYP1B1 inhibitors. Of note, carvedilol exhibited direct cytotoxicity against both human lung adenocarcinoma epithelial cell line A459 and its Taxol-resistant subline (A549/Taxol). In particular, it showed superior toxicity towards A549/Taxol cells that overexpressed CYP1B1, which further supported its potential to be an effective CYP1B1 inhibitor.
Insights
Researchers repurposed drugs to find Cytochrome P450 1B1 (CYP1B1) inhibitors for cancer therapy. Carvedilol showed potent CYP1B1 inhibition and cytotoxicity against drug-resistant lung cancer cells.
Area of Science:
- Biochemistry
- Pharmacology
- Computational Chemistry
Background:
- Cytochrome P450 1B1 (CYP1B1) is implicated in cancer development and resistance.
- Drug discovery for CYP1B1 inhibitors is complex and high-risk.
Purpose of the Study:
- To identify potential CYP1B1 inhibitors using a drug repurposing strategy.
- To validate the efficacy of identified compounds against cancer cells, particularly drug-resistant ones.
Main Methods:
- Structure-based virtual screening of the FDA drug database.
- In vitro enzyme inhibition assays (EROD assay).
- Molecular dynamics (MD) simulations, binding free energy, and density functional theory (DFT) calculations.
- Cytotoxicity assays on lung adenocarcinoma cell lines (A549 and A549/Taxol).
Main Results:
- Six compounds were initially identified as potential CYP1B1 inhibitors.
- Carvedilol and indacaterol demonstrated inhibitory activity against human CYP1B1.
- Re-evaluation of carvedilol's binding mode revealed superior performance in MD, binding free energy, and DFT calculations.
- Carvedilol exhibited direct cytotoxicity against A549 and A549/Taxol cells, with enhanced toxicity towards CYP1B1-overexpressing A549/Taxol cells.
Conclusions:
- Carvedilol is a potent CYP1B1 inhibitor with potential therapeutic applications.
- The study highlights the importance of accurate binding pose determination for drug efficacy.
- Carvedilol shows promise for treating lung adenocarcinoma, including Taxol-resistant forms.
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