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◆ In Silico Research in Biomedicine2025-12-27· Pharmacophore

In silico identification of benzamide-based aryl halides as EGFR inhibitors: multi-ligand ADMET, pharmacophore mapping, and target prediction

Caroline do Nascimento Gonçalves, Matheus Nunes da Rocha, Emmanuel Silva Marinho

原始摘要(英文原文)· Original abstract
Cancer is one of the greatest global health challenges, with specific costs of US$25 trillion by 2050, including treatment and socioeconomic impacts. The epidermal growth factor receptor (EGFR), a central tyrosine kinase, is a key target for anticancer therapies. The halogenated-benzamides scaffold was chosen due to its reported action among clinical EGFR inhibitors, favoring its binding in hydrophobic pockets in the protein. To characterize the pharmacokinetics of 24 halogenated-benzamides, a multiparametric optimization was performed using the open-source software DataWarrior for absorption, distribution, metabolism, excretion, and toxicity (ADMET) parameters, while EGFR inhibitory activity was conducted through ligand-based target prediction, which was supported by molecular docking simulations using AutoDockVina software, and Normal Mode Analysis (NMA)-based molecular dynamics simulation. AB1 and AB4 stand out as lead compounds due to high intestinal absorption (>95%) and apparent permeability (P app > 1.0 × 10 -5 cm/s) compatible with high pharmacological potential. Target prediction revealed a strong association with EGFR (392 and 395 similar compounds). Molecular docking simulations identified van der Waals interactions with residues PHE-723 and VAL-726, strongly influenced by the halogen-substituted ring of the ligands, with affinity energies close to clinical drugs (–6.7 to –6.75 kcal/mol). Molecular dynamics showed that AB1 can cause a conformational deformation in EGFR similarly to Gefitinib, indicating a promising antiproliferative effect. The results positioning them as promising candidates for anticancer therapies and highlighting the practicality of in silico approaches in the early screening of new drugs.
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In silico identification of benzamide-based aryl halides as EGFR inhibitors: multi-ligand ADMET, pharmacophore mapping, and target prediction — 科研速览 Science Skim