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Updated: Apr 1, 2026

Author Spotlight: Understanding DNA Damage Response in Mammalian Oocytes and Preimplantation Embryos
Published on: June 23, 2023
Maternal diabetes triggers DNA damage and DNA damage response in neurulation stage embryos through oxidative stress
Daoyin Dong1, Jingwen Yu1, Yanqing Wu1
1Department of Obstetrics, Gynecology & Reproductive Sciences, University of Maryland School of Medicine, Baltimore, MD 21201, USA.
Abstract:
DNA damage and DNA damage response (DDR) in neurulation stage embryos under maternal diabetes conditions are not well understood. The purpose of this study was to investigate whether maternal diabetes and high glucose in vitro induce DNA damage and DDR in the developing embryo through oxidative stress. In vivo experiments were conducted by mating superoxide dismutase 1 (SOD1) transgenic male mice with wild-type (WT) female mice with or without diabetes. Embryonic day 8.75 (E8.75) embryos were tested for the DNA damage markers, phosphorylated histone H2A.X (p-H2A.X) and DDR signaling intermediates, including phosphorylated checkpoint 1 (p-Chk1), phosphorylated checkpoint 2 (p-Chk2), and p53. Levels of the same DNA damage markers and DDR signaling intermediates were also determined in the mouse C17.2 neural stem cell line. Maternal diabetes and high glucose in vitro significantly increased the levels of p-H2A.X. Levels of p-Chk1, p-Chk2, and p53, were elevated under both maternal diabetic and high glucose conditions. SOD1 overexpression blocked maternal diabetes-induced DNA damage and DDR in vivo. Tempol, a SOD1 mimetic, diminished high glucose-induced DNA damage and DDR in vitro. In conclusion, maternal diabetes and high glucose in vitro induce DNA damage and activates DDR through oxidative stress, which may contribute to the pathogenesis of diabetes-associated embryopathy.
Insights
Maternal diabetes and high glucose induce DNA damage and activate the DNA damage response (DDR) via oxidative stress in developing embryos. Antioxidant interventions like SOD1 overexpression or Tempol mitigate these effects, suggesting a role in diabetes-associated embryopathy.
Area of Science:
- Developmental biology
- Molecular biology
- Genetics
Background:
- DNA damage and response (DDR) during embryonic development under maternal diabetes are poorly understood.
- Oxidative stress is implicated in various diabetic complications.
Purpose of the Study:
- To investigate if maternal diabetes and high glucose induce DNA damage and DDR in embryos through oxidative stress.
- To explore the protective effects of antioxidant interventions.
Main Methods:
- In vivo studies using superoxide dismutase 1 (SOD1) transgenic mice and wild-type (WT) mice with or without diabetes.
- In vitro studies using mouse C17.2 neural stem cells exposed to high glucose.
- Assessed DNA damage marker (phosphorylated histone H2A.X) and DDR signaling intermediates (p-Chk1, p-Chk2, p53).
Main Results:
- Maternal diabetes and high glucose significantly increased DNA damage marker (p-H2A.X) and DDR signaling intermediates (p-Chk1, p-Chk2, p53).
- SOD1 overexpression prevented maternal diabetes-induced DNA damage and DDR in vivo.
- Tempol (SOD1 mimetic) reduced high glucose-induced DNA damage and DDR in vitro.
Conclusions:
- Maternal diabetes and high glucose induce DNA damage and activate DDR via oxidative stress in developing embryos.
- These findings suggest a mechanism contributing to diabetes-associated embryopathy.
- Antioxidant strategies may offer protective benefits.
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