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Updated: May 2, 2026

Author Spotlight: Understanding DNA Damage Response in Mammalian Oocytes and Preimplantation Embryos
Published on: June 23, 2023
High-dose irradiation induces cell cycle arrest, apoptosis, and developmental defects during Drosophila oogenesis
Hee Jin Shim1, Eun-Mi Lee1, Long Duy Nguyen1
1Ilsong Institute of Life Science, Hallym University, Anyang, Gyeonggi-do, Korea.
Abstract:
Ionizing radiation (IR) treatment induces a DNA damage response, including cell cycle arrest, DNA repair, and apoptosis in metazoan somatic cells. Because little has been reported in germline cells, we performed a temporal analysis of the DNA damage response utilizing Drosophila oogenesis as a model system. Oogenesis in the adult Drosophila female begins with the generation of 16-cell cyst by four mitotic divisions of a cystoblast derived from the germline stem cells. We found that high-dose irradiation induced S and G2 arrests in these mitotically dividing germline cells in a grp/Chk1- and mnk/Chk2-dependent manner. However, the upstream kinase mei-41, Drosophila ATR ortholog, was required for the S-phase checkpoint but not for the G2 arrest. As in somatic cells, mnk/Chk2 and dp53 were required for the major cell death observed in early oogenesis when oocyte selection and meiotic recombination occurs. Similar to the unscheduled DNA double-strand breaks (DSBs) generated from defective repair during meiotic recombination, IR-induced DSBs produced developmental defects affecting the spherical morphology of meiotic chromosomes and dorsal-ventral patterning. Moreover, various morphological abnormalities in the ovary were detected after irradiation. Most of the IR-induced defects observed in oogenesis were reversible and were restored between 24 and 96 h after irradiation. These defects in oogenesis severely reduced daily egg production and the hatch rate of the embryos of irradiated female. In summary, irradiated germline cells induced DSBs, cell cycle arrest, apoptosis, and developmental defects resulting in reduction of egg production and defective embryogenesis.
Insights
Ionizing radiation induces DNA damage, cell cycle arrest, and apoptosis in Drosophila germline cells. Most radiation-induced defects in oogenesis are reversible, but daily egg production and embryo development are significantly reduced.
Area of Science:
- Developmental Biology
- Cell Biology
- Genetics
Background:
- Ionizing radiation (IR) triggers DNA damage responses in somatic cells.
- The DNA damage response in germline cells, particularly during oogenesis, is less understood.
Purpose of the Study:
- To temporally analyze the DNA damage response in Drosophila germline cells following IR exposure.
- To investigate the roles of specific kinases (grp/Chk1, mnk/Chk2, mei-41) and dp53 in the germline DNA damage response.
Main Methods:
- Utilizing Drosophila oogenesis as a model system to study IR effects.
- Temporal analysis of cell cycle progression, DNA damage, apoptosis, and developmental outcomes post-irradiation.
Main Results:
- High-dose IR induced S and G2 cell cycle arrests in dividing germline cells, dependent on grp/Chk1 and mnk/Chk2.
- mei-41 (Drosophila ATR ortholog) was crucial for the S-phase checkpoint but not G2 arrest.
- mnk/Chk2 and dp53 were required for IR-induced apoptosis during early oogenesis.
- IR-induced DNA double-strand breaks (DSBs) caused developmental defects in chromosome morphology and patterning.
- Most IR-induced oogenic defects were reversible within 24–96 hours.
- IR significantly reduced egg production and embryo hatch rates.
Conclusions:
- Drosophila germline cells exhibit robust DNA damage responses to IR, including cell cycle arrest and apoptosis.
- Specific signaling pathways involving Chk1, Chk2, ATR, and dp53 mediate these responses.
- IR-induced damage to germline cells leads to significant, though often reversible, oogenic defects and reduced reproductive capacity.
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