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A Simple Bioassay for the Evaluation of Vascular Endothelial Growth Factors
Published on: March 15, 2016
Discovery of VEGFR2 inhibitors by integrating naïve Bayesian classification, molecular docking and drug screening
De Kang1, Xiaocong Pang1, Wenwen Lian1
1Institute of Materia Medica, Chinese Academy of Medical Sciences, Peking Union Medical College Xian Nong Tan Street Beijing 100050 China liuailin@imm.ac.cn dugh@imm.ac.cn +86-10-6316-5184 +86-10-8315-0885.
Abstract:
The high morbidity and mortality of cancer make it one of the leading causes of global death, thus it is an urgent need to develop effective drugs for cancer therapy. Vascular endothelial growth factor receptor-2 (VEGFR2) acts as a central modulator of angiogenesis, and is therefore an important pharmaceutical target for developing anti-angiogenic agents. In this study, ligand-based naïve Bayesian (NB) models and structure-based molecular docking were combined to develop a virtual screening (VS) pipeline for identifying potential VEGFR2 inhibitors from FDA-approved drugs. The best validated naïve Bayesian model (NB-c) gave Matthews correlation coefficients of 0.966 and 0.951 for the test set and external validation set, respectively. 1841 FDA-approved drugs were sequentially screened by the optimal model NB-c and molecular docking module LibDock. By analyzing the results of VS, 9 top ranked drugs with EstPGood value ≥ 0.6 and LibDock Score ≥ 120 were chosen for biological validation. VEGFR2 kinase assay results demonstrated that flubendazole, rilpivirine and papaverine showed VEGFR2 inhibitory activities with IC50 values ranging from 0.47 to 6.29 μM. Binding mode analysis with CDOCKER revealed the action mechanism of the 3 hit drugs binding to VEGFR2. In summary, we not only proposed an integrated VS pipeline for potential VEGFR2 inhibitors screening, but also identified 3 FDA-approved drugs as novel VEGFR2 inhibitors, which could be used to design and develop new antiangiogenic agents.
Insights
Researchers developed a virtual screening pipeline to find new cancer drugs. Three FDA-approved drugs, flubendazole, rilpivirine, and papaverine, were identified as potential inhibitors of vascular endothelial growth factor receptor-2 (VEGFR2), a key target for anti-angiogenic therapy.
Area of Science:
- Oncology
- Pharmacology
- Computational Chemistry
Background:
- Cancer is a leading cause of death globally, necessitating novel therapeutic agents.
- Vascular endothelial growth factor receptor-2 (VEGFR2) is crucial for angiogenesis and a significant target for anti-cancer drug development.
Purpose of the Study:
- To establish an integrated virtual screening (VS) pipeline for identifying potential VEGFR2 inhibitors.
- To screen FDA-approved drugs for novel VEGFR2 inhibitory activity.
Main Methods:
- Development of ligand-based naïve Bayesian (NB) models and structure-based molecular docking.
- Screening of 1841 FDA-approved drugs using the optimal NB model (NB-c) and LibDock.
- Biological validation of top-ranked compounds using VEGFR2 kinase assays and binding mode analysis with CDOCKER.
Main Results:
- The NB-c model achieved high accuracy (Matthews correlation coefficients of 0.966 and 0.951).
- Flubendazole, rilpivirine, and papaverine demonstrated significant VEGFR2 inhibitory activity (IC50 values from 0.47 to 6.29 μM).
- Binding analysis elucidated the mechanism of action for the identified inhibitors.
Conclusions:
- An effective VS pipeline for VEGFR2 inhibitor discovery was proposed.
- Three FDA-approved drugs were identified as novel VEGFR2 inhibitors.
- These drugs hold potential for developing new anti-angiogenic cancer therapies.
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