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Published on: February 10, 2022
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.
Abstract:
Cancer is a global public health problem characterized by deviations in the mechanisms that control cell proliferation, resulting in mutations and variations in the structure of DNA. The mechanisms of action of chemotherapeutic drugs are related to their interactions and binding with DNA; consequently, the development of antineoplastic agents that target DNA has extensively focused on use of acridine, a heterocyclic molecule that binds to deoxyribonucleic acid via intercalation, a process that modifies DNA and makes replication impossible. In this context, this study aimed to computationally investigate how acridine intercalators interact with DNA by evaluating the mechanism of interactions, binding, and interaction energies using quantum mechanics calculations. Molecular electrostatic potential (MEP) analysis revealed that acridine has well- distributed negative charges in the center of the molecule, indicative of a dominant electron-rich region. Acridine exhibits well-defined π orbitals (HOMO and LUMO) on the aromatic rings, suggesting that charge transfer occurs within the molecule and may be responsible for the pharmacological activity of the compound. Structural analysis revealed that acridine interacts with DNA mainly through hydrogen bonds between HAcridine… ODNA with bond lengths ranging from 2.370 Å to 3.472 Å. The Binding energy (ΔEBind) showed that acridine interacts with DNA effectively for all complexes and the electronic energy results (E+ZPE) for complexes revealed that the complexes are more stable when the DNA-centered acridine molecule. The Laplacian-analysis topological QTAIM parameter (∇2ρ(r)) and total energy (H(r)) categorized the interactions as being non-covalent in nature. The RGD peak distribution in the NCI analysis reveals the presence of van der Waals interactions, predominantly between the intercalator and DNA. Accordingly, we confirm that acridine/DNA interactions are relevant for understanding how the intercalator acts within nucleic acids.
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.
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