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Melatonin and its metabolites as chemical agents capable of directly repairing oxidized DNA. | LitMetric

Melatonin and its metabolites as chemical agents capable of directly repairing oxidized DNA.

J Pineal Res

Departamento de Química, Universidad Autónoma Metropolitana-Iztapalapa, Iztapalapa, México City, México.

Published: March 2019

AI Article Synopsis

  • - Oxidative stress causes chemical damage to DNA, and this study investigates how melatonin and its metabolites can directly repair such damage by targeting specific types of radical cations and radicals in DNA.
  • - The research found that melatonin can effectively repair guanine-centered radicals through fast electron transfer and C-centered radicals in 2'-deoxyguanosine via slower hydrogen atom transfer, which is still quick enough to prevent further DNA damage.
  • - Specific metabolites of melatonin, like 6-hydroxymelatonin and 4-hydroxymelatonin, have been shown to repair hydroxyl (OH) adducts in DNA, making melatonin and its derivatives potentially crucial in protecting DNA from oxidative damage.

Article Abstract

Oxidative stress mediates chemical damage to DNA yielding a wide variety of products. In this work, the potential capability of melatonin and several of its metabolites to repair directly (chemically) oxidative lesions in DNA was explored. It was found that all the investigated molecules are capable of repairing guanine-centered radical cations by electron transfer at very high rates, that is, diffusion-limited. They are also capable of repairing C-centered radicals in the sugar moiety of 2'-deoxyguanosine (2dG) by hydrogen atom transfer. Although this was identified as a rather slow process, with rate constants ranging from 1.75 to 5.32 × 10  M s , it is expected to be fast enough to prevent propagation of the DNA damage. Melatonin metabolites 6-hydroxymelatonin (6OHM) and 4-hydroxymelatonin (4OHM) are also predicted to repair OH adducts in the imidazole ring. In particular, the rate constants corresponding to the repair of 8-OH-G adducts were found to be in the order of 10  M s and are assisted by a water molecule. The results presented here strongly suggest that the role of melatonin in preventing DNA damage might be mediated by its capability, combined with that of its metabolites, to directly repair oxidized sites in DNA through different chemical routes.

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Source
http://dx.doi.org/10.1111/jpi.12539DOI Listing

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