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Measuring DNA Damage and Repair in Mouse Splenocytes After Chronic In Vivo Exposure to Very Low Doses of Beta- and Gamma-Radiation
Published on: July 3, 2015
Melatonin protects mouse oocytes from DNA damage by enhancing nonhomologous end-joining repair
Jiyeon Leem1, Guang-Yu Bai1,2, Jae-Sung Kim3
1Department of Integrative Biotechnology, College of Biotechnology and Bioengineering, Sungkyunkwan University, Suwon, Korea.
Abstract:
Mammalian oocytes remain arrested at the first prophase of meiosis in ovarian follicles for an extended period. During this protracted arrest, oocytes are remarkably susceptible to the accumulation of DNA damage. Melatonin (N-acetyl-5-methoxytryptamine), a hormone secreted by the pineal gland, has diverse effects on various physiological processes. However, the effect of melatonin on DNA damage response in mammalian oocytes has not been explored. Here, we showed that melatonin protected mouse oocytes from DNA damage induced by double-strand breaks (DSBs) during prophase arrest and subsequently improved oocyte quality. We found that DNA damage during prophase arrest impaired subsequent meiotic maturation and deteriorated oocyte quality, increasing chromosome fragmentation, spindle abnormality, mitochondrial aggregation, and oxidative stress. However, melatonin treatment during DNA damage accumulation at prophase improved meiotic maturation and relieved the quality decline of oocytes. In addition, melatonin inhibited the accumulation of DNA damage during prophase arrest by reducing the γ-H2AX levels. Although activated ATM levels were decreased by melatonin treatment, the effect of melatonin on DNA damage response was not a direct consequence of ATM inhibition. Instead, melatonin enhanced DNA repair via nonhomologous end-joining (NHEJ) pathway. Interestingly, these actions of melatonin on DNA damage response are receptor-independent in mouse oocytes. Therefore, our results demonstrated that melatonin protects oocytes from DNA damage during prophase arrest by enhancing DNA repair via NHEJ and subsequently prevents the deterioration of oocyte quality during meiotic maturation.
Insights
Melatonin protects mammalian oocytes from DNA damage during meiotic arrest. This hormone enhances DNA repair via the nonhomologous end-joining pathway, improving oocyte quality and maturation.
Area of Science:
- Reproductive Biology
- Molecular Biology
- Cellular Biology
Background:
- Mammalian oocytes arrest in meiosis I, making them vulnerable to DNA damage.
- DNA damage impairs oocyte maturation and quality, leading to fragmentation and oxidative stress.
Purpose of the Study:
- To investigate the effect of melatonin on DNA damage response in mammalian oocytes.
- To determine if melatonin can protect oocytes from DNA damage and improve their quality.
Main Methods:
- Mouse oocytes were subjected to DNA damage induction during prophase arrest.
- Melatonin treatment was administered during DNA damage accumulation.
- DNA damage levels (γ-H2AX), ATM activation, DNA repair pathways (NHEJ), meiotic maturation, chromosome integrity, spindle formation, mitochondrial distribution, and oxidative stress were assessed.
Main Results:
- Melatonin protected oocytes from DNA damage-induced deterioration.
- Melatonin reduced DNA damage accumulation (γ-H2AX levels) and improved meiotic maturation and oocyte quality.
- Melatonin enhanced DNA repair through the nonhomologous end-joining (NHEJ) pathway, independent of ATM activation and oocyte receptors.
Conclusions:
- Melatonin safeguards oocytes against DNA damage during meiotic arrest.
- Enhanced DNA repair via NHEJ by melatonin prevents oocyte quality decline during maturation.
- Melatonin offers a potential strategy to improve oocyte quality and reproductive outcomes.
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