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Updated: Jun 23, 2025

Cell-Specific Paired Interrogation of the Mouse Ovarian Epigenome and Transcriptome
Published on: February 24, 2023
The role of declining ataxia-telangiectasia-mutated (ATM) function in oocyte aging
Reiko Suzuki1, Xiujuan Tan1, Katarzyna J Szymanska1
1Department of Obstetrics, Gynecology and Reproductive Sciences, Yale University School of Medicine, New Haven, USA.
Abstract:
Despite the advances in the understanding of reproductive physiology, the mechanisms underlying ovarian aging are still not deciphered. Recent research found an association between impaired ATM-mediated DNA double-strand break (DSB) repair mechanisms and oocyte aging. However, direct evidence connecting ATM-mediated pathway function decline and impaired oocyte quality is lacking. The objective of this study was to determine the role of ATM-mediated DNA DSB repair in the maintenance of oocyte quality in a mouse oocyte knockdown model. Gene interference, in vitro culture, parthenogenesis coupled with genotoxicity assay approaches, as well as molecular cytogenetic analyses based upon next-generation sequencing, were used to test the hypothesis that intact ATM function is critical in the maintenance of oocyte quality. We found that ATM knockdown impaired oocyte quality, resulting in poor embryo development. ATM knockdown significantly lowered or blocked the progression of meiosis in vitro, as well as retarding and reducing embryo cleavage after parthenogenesis. After ATM knockdown, all embryos were of poor quality, and none reached the blastocyst stage. ATM knockdown was also associated with an increased aneuploidy rate compared to controls. Finally, ATM knockdown increased the sensitivity of the oocytes to a genotoxic active metabolite of cyclophosphamide, with increased formation of DNA DSBs, reduced survival, and earlier apoptotic death compared to controls. These findings suggest a key role for ATM in maintaining oocyte quality and resistance to genotoxic stress, and that the previously observed age-induced decline in oocyte ATM function may be a prime factor contributing to oocyte aging.
Insights
ATM
Area of Science:
- Reproductive biology
- Molecular genetics
- Cellular aging
Background:
- Ovarian aging mechanisms remain unclear.
- ATM-mediated DNA double-strand break (DSB) repair is linked to oocyte aging.
- Direct evidence for ATM's role in oocyte quality is needed.
Purpose of the Study:
- To investigate the role of ATM-mediated DNA DSB repair in maintaining mouse oocyte quality.
- To test the hypothesis that intact ATM function is critical for oocyte quality.
Main Methods:
- Gene knockdown in mouse oocytes.
- In vitro oocyte culture and parthenogenesis.
- Genotoxicity assays and next-generation sequencing for molecular cytogenetics.
Main Results:
- ATM knockdown significantly impaired oocyte quality and embryo development.
- Meiosis progression and embryo cleavage were reduced or blocked.
- Increased aneuploidy and sensitivity to genotoxic agents were observed.
Conclusions:
- ATM plays a crucial role in maintaining oocyte quality and resistance to genotoxic stress.
- Declining ATM function with age may contribute significantly to oocyte aging.
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