Understanding DNA under oxidative stress and sensitization: the role of molecular modeling

Elise Dumont1, Antonio Monari2

  • 1Laboratoire de Chimie, UMR 5182 Centre National de la Recherche Scientifique, École Normale Supérieure de Lyon Lyon, France.

Frontiers in Chemistry
|August 4, 2015
PubMed

Insights

DNA damage from oxidative stress and light sensitization is well-studied. Molecular modeling offers atomistic insights into DNA lesion mechanisms, aiding in the rational design of new chemotherapeutic agents.

Area of Science:

  • Biochemistry
  • Computational Chemistry
  • Molecular Biology

Background:

  • DNA is susceptible to damage from oxidative stress (free radicals, reactive oxygen species) and photosensitization.
  • Understanding DNA lesions is crucial for comprehending disease mechanisms and developing treatments.

Purpose of the Study:

  • To critically analyze computational strategies for modeling DNA lesions.
  • To elucidate the interplay between DNA reactivity and structural factors in damage induction.
  • To guide the rational design of novel chemotherapeutic agents.

Main Methods:

  • Utilizing molecular modeling, including ab initio molecular dynamics, to achieve atomistic and electronic resolution of DNA defects.
  • Employing multi-scale methodologies to model DNA photoreactions in complex biological environments.
  • Analyzing DNA/sensitizer complexes and photo-induced electron/energy transfer phenomena.

Main Results:

  • Molecular modeling provides unprecedented atomistic and electronic insights into DNA lesion induction mechanisms.
  • Multi-scale modeling is essential for capturing the complexities of DNA photoreactions and sequence selectivity.
  • Computational strategies reveal factors influencing DNA repair ratios for different lesions.

Conclusions:

  • Advanced computational approaches, particularly multi-scale modeling, are vital for in-depth comprehension of DNA lesion mechanisms.
  • Understanding DNA damage pathways through modeling facilitates the rational design of targeted chemotherapeutic agents.
  • This review highlights the power of computational chemistry in advancing DNA damage research.

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