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.

ACS Omega
|April 21, 2025
PubMed

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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