Interactions between DNA and the acridine intercalator: A computational study

Thaynara Guimarães Miranda1, Nicolas Nascimento Ciribelli1, Murielly Fernanda Ribeiro Bihain2

  • 1Programa de Pós Graduação em Biotecnologia, Universidade Federal do Tocantins (UFT), Gurupi, Tocantins CEP 77.402-970, Brazil.

PubMed

Insights

This study computationally investigates acridine

Area of Science:

  • Computational Chemistry
  • Molecular Biology
  • Drug Discovery

Background:

  • Cancer involves uncontrolled cell proliferation and DNA mutations.
  • Acridine is a heterocyclic molecule used in anticancer drugs that targets DNA via intercalation.
  • Understanding acridine-DNA interactions is crucial for developing novel chemotherapeutics.

Purpose of the Study:

  • To computationally investigate the interaction mechanisms, binding, and energies between acridine intercalators and DNA.
  • To elucidate the role of molecular electrostatic potential and electronic properties in acridine's pharmacological activity.
  • To characterize the nature and strength of acridine-DNA interactions.

Main Methods:

  • Quantum mechanics calculations were employed.
  • Molecular electrostatic potential (MEP) analysis was performed.
  • Analysis included binding energy calculations, electronic energy, QTAIM, and NCI analysis.

Main Results:

  • Acridine exhibits electron-rich regions and well-defined π orbitals, suggesting charge transfer.
  • Acridine primarily interacts with DNA via hydrogen bonds and van der Waals forces.
  • Calculations confirmed effective binding and stability of acridine-DNA complexes, categorizing interactions as non-covalent.

Conclusions:

  • Acridine's interaction with DNA is confirmed to be non-covalent and effective.
  • The study validates acridine-DNA interactions as key to the intercalator's mechanism of action.
  • Findings support the development of acridine-based antineoplastic agents.