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Published on: February 28, 2021
Comparative Molecular Docking Analysis, of Natural and Synthetic Ligands, Targeting BRCA1, BRCA2, ER, and PR in
Stefano Turini1,2,3, Momir Dunjic4,5,6, Lazar Nejkovic7,8
1Senior Lecturer in Biochemistry and Microbiology, Alma Mater Europaea (AMEU-ECM); Slovenska Ulica/Street 17, Maribor, 2000, Slovenia.
Objective:
Breast cancer remains a leading cause of cancer-related mortality in women, necessitating the development of innovative therapeutic strategies. This study employs comparative molecular docking to evaluate the binding affinities of natural compounds, derived from a specifically formulated oil mixture, against key molecular targets in breast cancer BRCA1, BRCA2, estrogen receptor (ER), and progesterone receptor (PR).
Methods:
Synthetic ligands commonly used in breast cancer therapy were included as reference compounds. Molecular docking was performed using 1-Click Docking software to determine binding energy values, expressed in kcal/mol, with more negative ΔG values indicating stronger and more spontaneous ligand-receptor interactions.
Results:
Among the synthetic ligands, Epirubicin exhibited the highest binding affinity to BRCA2 (-9.0 kcal/mol), while Capecitabine demonstrated the strongest interaction with PR (-8.1 kcal/mol). Notably, the natural compound Narirutin outperformed these drugs, showing a superior binding affinity to BRCA2 (-9.2 kcal/mol) and PR (-8.9 kcal/mol). Additionally, Geraniol and Citronellol exhibited competitive binding affinities to ER and PR, respectively, underscoring their potential therapeutic relevance. These findings highlight the capability of natural compounds to act as effective inhibitors of critical breast cancer molecular targets. Narirutin, in particular, stands out as a promising candidate for further exploration in integrative cancer therapies.
Conclusion:
This study demonstrates the utility of bioinformatics approaches, specifically molecular docking, in identifying natural compounds with high therapeutic potential and provides a computational framework for future experimental validation and drug development.
Insights
Natural compounds show promise in breast cancer treatment. Narirutin exhibited superior binding affinity to BRCA2 and progesterone receptor (PR) compared to synthetic drugs, suggesting potential for integrative cancer therapies.
Area of Science:
- Computational chemistry
- Bioinformatics
- Oncology
Background:
- Breast cancer is a major cause of mortality in women.
- Innovative therapeutic strategies are urgently needed.
- Targeting key molecular pathways like BRCA1, BRCA2, ER, and PR is crucial.
Purpose of the Study:
- To evaluate the binding affinities of natural compounds against breast cancer targets.
- To compare natural compounds with synthetic ligands using molecular docking.
- To identify potential natural compound candidates for breast cancer therapy.
Main Methods:
- Comparative molecular docking was performed.
- 1-Click Docking software was utilized.
- Binding energy (ΔG in kcal/mol) was calculated to assess ligand-receptor interactions.
Main Results:
- Narirutin showed higher binding affinity to BRCA2 (-9.2 kcal/mol) and PR (-8.9 kcal/mol) than Epirubicin and Capecitabine.
- Geraniol and Citronellol demonstrated significant binding to ER and PR, respectively.
- Natural compounds effectively inhibited key breast cancer molecular targets.
Conclusions:
- Molecular docking is a valuable tool for identifying natural compounds with therapeutic potential.
- Narirutin is a promising candidate for further research in breast cancer treatment.
- This study provides a computational framework for drug development and experimental validation.
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