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J Radiat Res
2024 Apr 20; doi: 10.1093/jrr/rrae012.
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Changes in repair pathways of radiation-induced DNA double-strand breaks at the midblastula transition in Xenopus embryo.
Morozumi R
,
Shimizu N
,
Tamura K
,
Nakamura M
,
Suzuki A
,
Ishiniwa H
,
Ide H
,
Tsuda M
.
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Ionizing radiation (IR) causes DNA damage, particularly DNA double-strand breaks (DSBs), which have significant implications for genome stability. The major pathways of repairing DSBs are homologous recombination (HR) and nonhomologous end joining (NHEJ). However, the repair mechanism of IR-induced DSBs in embryos is not well understood, despite extensive research in somatic cells. The externally developing aquatic organism, Xenopus tropicalis, serves as a valuable model for studying embryo development. A significant increase in zygotic transcription occurs at the midblastula transition (MBT), resulting in a longer cell cycle and asynchronous cell divisions. This study examines the impact of X-ray irradiation on Xenopus embryos before and after the MBT. The findings reveal a heightened X-ray sensitivity in embryos prior to the MBT, indicating a distinct shift in the DNA repair pathway during embryo development. Importantly, we show a transition in the dominant DSB repair pathway from NHEJ to HR before and after the MBT. These results suggest that the MBT plays a crucial role in altering DSB repair mechanisms, thereby influencing the IR sensitivity of developing embryos.
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38648785
???displayArticle.pmcLink???PMC11115444 ???displayArticle.link???J Radiat Res ???displayArticle.grants???[+]
Institute of Environmental Radioactivity, Fukushima University, 19KK0210 JSPS KAKENHI, 2020-22 KOSE Cosmetology Research Foundation, Takahashi Industrial and Economic Research Foundation, Hoansha Foundation, Program of the Network-type Joint Usage/Research Center for Radiation Disaster Medical Science
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