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Published on: February 7, 2018
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.
Abstract:
DNA is constantly exposed to damaging threats coming from oxidative stress, i.e., from the presence of free radicals and reactive oxygen species. Sensitization from exogenous and endogenous compounds that strongly enhance the frequency of light-induced lesions also plays an important role. The experimental determination of DNA lesions, though a difficult subject, is somehow well established and allows to elucidate even extremely rare DNA lesions. In parallel, molecular modeling has become fundamental to clearly understand the fine mechanisms related to DNA defects induction. Indeed, it offers an unprecedented possibility to get access to an atomistic or even electronic resolution. Ab initio molecular dynamics may also describe the time-evolution of the molecular system and its reactivity. Yet the modeling of DNA (photo-)reactions does necessitate elaborate multi-scale methodologies to tackle a damage induction reactivity that takes place in a complex environment. The double-stranded DNA environment is first characterized by a very high flexibility, but also a strongly inhomogeneous electrostatic embedding. Additionally, one aims at capturing more subtle effects, such as the sequence selectivity which is of critical important for DNA damage. The structure and dynamics of the DNA/sensitizers complexes, as well as the photo-induced electron- and energy-transfer phenomena taking place upon sensitization, should be carefully modeled. Finally the factors inducing different repair ratios for different lesions should also be rationalized. In this review we will critically analyze the different computational strategies used to model DNA lesions. A clear picture of the complex interplay between reactivity and structural factors will be sketched. The use of proper multi-scale modeling leads to the in-depth comprehension of DNA lesions mechanisms and also to the rational design of new chemo-therapeutic agents.
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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