Biological and Teratogenic Evaluations of Nitrogen Heterocycles for Anticancer Therapy

Jéssica Celerino Dos Santos1, Josival Emanuel Ferreira Alves2, Rafael David Souto de Azevedo1

  • 1Molecular Biology Laboratory, University of Pernambuco (UPE), Multicampi Garanhuns, Garanhuns 55294-902, PE, Brazil.

Insights

This study synthesized four nitrogen heterocycles for anticancer therapy. The quinoline derivative (3b) showed promising antiproliferative activity and DNA interaction without teratogenic effects in zebrafish embryos.

Area of Science:

  • Medicinal Chemistry
  • Pharmacology
  • Toxicology

Background:

  • Nitrogen heterocycles with acridine, quinoline, indole, and pyridine cores are explored for anticancer potential due to enzyme inhibition and biomolecular binding.
  • Unspecific biological interactions necessitate thorough evaluation of novel anticancer agents for safety and efficacy.
  • This study investigates the biological and teratogenic effects of four synthesized nitrogen heterocycles.

Purpose of the Study:

  • To synthesize and characterize four 2-cyano-N-phenylacrylamine derivatives with acridine, quinoline, indole, and pyridine nuclei.
  • To evaluate their DNA interaction, physicochemical and pharmacokinetic properties, enzyme inhibition, antiproliferative activity, hemolytic activity, and in vivo toxicity.
  • To identify a promising candidate for anticancer therapy with a favorable safety profile.

Main Methods:

  • Synthesis and characterization of four nitrogen heterocycles (3a-3d).
  • In vitro assays: DNA binding (UV-vis, fluorescence quenching), Topoisomerase IIα inhibition, antiproliferative activity (MCF-7, T47-D cells), hemolytic activity (human erythrocytes).
  • In silico methods (molecular docking) and in vivo studies (zebrafish embryos) for toxicity assessment.

Main Results:

  • Compounds demonstrated DNA intercalation with varying binding affinities; quinoline derivative (3b) showed the strongest interaction.
  • All derivatives inhibited Topoisomerase IIα and exhibited cytotoxicity against breast cancer cells (MCF-7, T47-D), with 3b being particularly effective.
  • No hemolytic activity or significant teratogenic/cardiotoxic effects were observed in zebrafish embryos, though alterations in SOD and CAT activity warrant further investigation.

Conclusions:

  • The quinoline derivative (3b) is identified as the most promising anticancer agent due to its potent antiproliferative activity and favorable biomolecular interactions.
  • Compound 3b demonstrates a distinct safety profile compared to existing therapies, showing no adverse effects in zebrafish embryos.
  • Further research into reactive oxygen species (ROS) generation is recommended to fully assess potential adverse effects.

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