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Author Spotlight: Understanding DNA Damage Response in Mammalian Oocytes and Preimplantation Embryos
Published on: June 23, 2023
DNA Double Strand Break Response and Limited Repair Capacity in Mouse Elongated Spermatids
Emad A Ahmed1,2, Harry Scherthan3, Dirk G de Rooij4
1Laboratory of Immunology and Molecular Physiology, Department of Zoology, Faculty of Science, Assiut University, Assiut 71516, Egypt. emad.ahmed@science.au.edu.eg.
Abstract:
Spermatids are extremely sensitive to genotoxic exposures since during spermiogenesis only error-prone non homologous end joining (NHEJ) repair pathways are available. Hence, genomic damage may accumulate in sperm and be transmitted to the zygote. Indirect, delayed DNA fragmentation and lesions associated with apoptotic-like processes have been observed during spermatid elongation, 27 days after irradiation. The proliferating spermatogonia and early meiotic prophase cells have been suggested to retain a memory of a radiation insult leading later to this delayed fragmentation. Here, we used meiotic spread preparations to localize phosphorylate histone H2 variant (γ-H2AX) foci marking DNA double strand breaks (DSBs) in elongated spermatids. This technique enabled us to determine the background level of DSB foci in elongated spermatids of RAD54/RAD54B double knockout (dko) mice, severe combined immunodeficiency SCID mice, and poly adenosine diphosphate (ADP)-ribose polymerase 1 (PARP1) inhibitor (DPQ)-treated mice to compare them with the appropriate wild type controls. The repair kinetics data and the protein expression patterns observed indicate that the conventional NHEJ repair pathway is not available for elongated spermatids to repair the programmed and the IR-induced DSBs, reflecting the limited repair capacity of these cells. However, although elongated spermatids express the proteins of the alternative NHEJ, PARP1-inhibition had no effect on the repair kinetics after IR, suggesting that DNA damage may be passed onto sperm. Finally, our genetic mutant analysis suggests that an incomplete or defective meiotic recombinational repair of Spo11-induced DSBs may lead to a carry-over of the DSB damage or induce a delayed nuclear fragmentation during the sensitive programmed chromatin remodeling occurring in elongated spermatids.
Insights
Spermatids are highly sensitive to DNA damage due to limited repair pathways. Genomic damage in sperm can be passed to offspring, highlighting risks from genotoxic exposures during spermiogenesis.
Area of Science:
- Reproductive biology
- Genetics
- Molecular biology
Background:
- Spermatids are vulnerable to genotoxic damage because they rely on error-prone DNA repair mechanisms.
- Accumulated genomic damage in sperm can be transmitted to the zygote, potentially affecting offspring.
- Delayed DNA fragmentation and apoptotic-like processes occur in spermatids post-irradiation.
Purpose of the Study:
- To investigate DNA double-strand break (DSB) repair capacity in elongated spermatids.
- To determine the role of non-homologous end joining (NHEJ) pathways in repairing DSBs during spermiogenesis.
- To assess the impact of genetic mutations and PARP1 inhibition on DSB repair in spermatids.
Main Methods:
- Localization of γ-H2AX foci to mark DSBs in elongated spermatids using meiotic spread preparations.
- Analysis of RAD54/RAD54B double knockout (dko) mice, SCID mice, and PARP1 inhibitor (DPQ)-treated mice.
- Comparison of repair kinetics and protein expression in mutant/treated mice versus wild-type controls.
Main Results:
- Conventional NHEJ pathway is unavailable for repairing programmed and IR-induced DSBs in elongated spermatids.
- PARP1 inhibition did not affect repair kinetics after irradiation, suggesting damage may be passed to sperm.
- Defective meiotic repair of Spo11-induced DSBs may lead to carry-over damage or delayed fragmentation during spermatid remodeling.
Conclusions:
- Elongated spermatids possess limited capacity to repair DNA double-strand breaks.
- Genomic damage may persist in sperm due to incomplete repair during spermiogenesis.
- Impaired DNA repair in spermatids poses a risk for transmitting genetic damage to the next generation.
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