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Updated: May 10, 2025

A Simple Bioassay for the Evaluation of Vascular Endothelial Growth Factors
Published on: March 15, 2016
Discovery of Novel Multiangiogenic Agents Targeting VEGFR2, EphB4, FGFR-1, and TIE-2: Receptor-Based Pharmacophore
Jeevan Patra1, Amit K Keshari1, Richie R Bhandare2,3
1Department of Pharmaceutical Chemistry, Amity Institute of Pharmacy, Amity University Uttar Pradesh, Lucknow Campus, Lucknow 226028, Uttar Pradesh, India.
Abstract:
The angiogenesis phenomenon is crucial for the formation of new blood vessels in cancer cells. The cancerous cells' progress hampers other healthy cells. The main objective of this study is to explore and decipher multimodal natural compounds against VEGFR2, EphB4, FGFR-1, and TIE-2 drug targets to arrest angiogenesis and progression. The receptor-based pharmacophore modeling of VEGFR2, EphB4, FGFR-1, and TIE-2 was developed and validated through enrichment parameters. Further, the validated hypothesis allowed for screening druglike natural product databases such as SuperNatural 3.0, COCONUT, and LOTUS. The common pharmacophoric featured natural compounds were assessed for binding affinities using absolute end-point methods. Finally, density functional theory has been studied to understand the chemical reactivity and stability of the protein complexes. Among all of the screened natural compounds, 17 natural compounds were found to align accurately against validated pharmacophore models having higher fitness scores and align scores. Taking reference drugs sorafenib (VEGFR2), NVP-BHG712 (EphB4), pemiganitib (FGFR-1), and DP1919 (TIE-2), three promising natural compounds CNP0003920, CNP0243075, and CNP0211397 were concluded based on their end-point binding energies, binding interactions, molecular dynamics, and optimal pharmacokinetic and toxicity profiles. The density functional theory (DFT) results suggested that the identified compounds bound with protein complexes are stable. Our findings can represent a promising starting point for developing multimodal analogues VEGFR2, EphB4, FGFR-1, and TIE-2 proteins.
Insights
This study identifies novel natural compounds that target key proteins (VEGFR2, EphB4, FGFR-1, TIE-2) to inhibit cancer angiogenesis and progression. Three compounds show promise for developing new anti-cancer therapies.
Area of Science:
- Drug discovery and development
- Computational chemistry
- Molecular biology
Background:
- Angiogenesis, the formation of new blood vessels, is vital for cancer cell growth and progression.
- Targeting key proteins like VEGFR2, EphB4, FGFR-1, and TIE-2 offers a strategy to inhibit tumor development.
Purpose of the Study:
- To identify multimodal natural compounds that can inhibit angiogenesis by targeting VEGFR2, EphB4, FGFR-1, and TIE-2.
- To explore the potential of natural products as a source for novel anti-cancer drug candidates.
Main Methods:
- Developed and validated receptor-based pharmacophore models for VEGFR2, EphB4, FGFR-1, and TIE-2.
- Screened natural product databases (SuperNatural 3.0, COCONUT, LOTUS) using validated pharmacophore models.
- Assessed binding affinities using absolute end-point methods and density functional theory (DFT) for stability analysis.
Main Results:
- Identified 17 natural compounds with accurate alignment to pharmacophore models.
- Selected three promising compounds (CNP0003920, CNP0243075, CNP0211397) based on binding energies, interactions, molecular dynamics, and pharmacokinetic profiles.
- DFT confirmed the stability of the identified compounds bound to protein complexes.
Conclusions:
- The identified natural compounds demonstrate potential as starting points for developing multimodal drugs targeting VEGFR2, EphB4, FGFR-1, and TIE-2.
- These findings offer a promising avenue for novel anti-cancer therapeutic strategies focused on inhibiting angiogenesis.
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