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February 12, 2026International Journal of Molecular Sciences0 citationsOpen Access

Design, Synthesis, Antiproliferative Potency and In Silico Studies of Novel Alkynyl Quinazolines as Potential EGFR Inhibitors

AGApostolia GkoutzivelakiSTSotiria-Iro TriantopoulouLCLykourgos Chiniadis

Key Points

  • The aim is to design and evaluate alkynyl quinazoline derivatives as inhibitors of the EGFR in cancer treatment.
  • Designed novel 4-anilino quinazoline derivatives with alkynyl substituents.
  • Conducted molecular docking to evaluate binding to EGFR.
  • Synthesized five selected compounds for biological assessment.
  • Evaluated antiproliferative effects on various cancer cell lines.
  • Identified five compounds with high predicted inhibitory activity against EGFR.
  • Showed significant cytotoxic effects on targeted cancer cell lines.
  • Demonstrated interference with cell cycle distribution and suppressed EGFR phosphorylation.

Abstract

The epidermal growth factor receptor (EGFR) is a highly attractive and promising target for novel anticancer agents, particularly for non-small-cell lung cancer (NSCLC), due to its crucial role in regulating cell survival and proliferation. Despite the development of first-generation reversible inhibitors like Gefitinib and Erlotinib, acquired resistance necessitated the discovery of highly potent irreversible inhibitors effective against drug-resistant mutants. Molecular docking calculations utilizing both EGFR conformations identified five top-ranked compounds (QN012, QN017, QN019, QN022, and QN023) proposed for synthesis and biological evaluation. These in silico studies predicted high inhibitory activity against the active and inactive state of EGFR. Herein, we report the design, synthesis and biological evaluation of novel 4-anilino quinazoline derivatives, bearing various alkynyl substituents at position 6, expected to bind to the hinge Met793 residue of EGFR. The effects of the derivatives on various cancer cell lines in terms of cytotoxic/cytostatic activity, interference with cell cycle phase distribution, and suppression of EGFR phosphorylation set the basis for the design of more potent derivatives.

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Cite This Study

Gkoutzivelaki et al. (2026) studied this question.

synapsesocial.com/papers/698d6eca5be6419ac0d54ac4https://doi.org/10.3390/ijms27041738
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Design And Synthesis of Novel Quinazoline Derivatives as Potent EGFR Inhibitors for Cancer Therapy2025
  2. 2Design, Synthesis of Novel Quinazolinone Derivatives and Evaluation of <scp>EGFR</scp> Kinase Inhibition Activity via In Vitro and In Silico Studies2026
  3. 3Exploring Anticancer Potential of Virtually Designed Novel Quinazoline Derivatives as EGFR Inhibitors: An <i>In-silico</i> Approach2025
  4. 4In Silico Development of Novel Quinazoline-Based EGFR Inhibitors via 3D-QSAR, Docking, ADMET, and Molecular Dynamics2026 · 4 citations
  5. 5In-Silico ADMET Prediction, Structure-Based Drug Design and Molecular Docking Studies of Quinazoline Derivatives as Novel EGFR Inhibitors2024 · 2 citations