Related Experiment Video
Updated: Mar 22, 2026

Laser Microirradiation to Study In Vivo Cellular Responses to Simple and Complex DNA Damage
Published on: January 31, 2018
Parp1 Deficiency Confers Defects in Chromatin Surveillance and Remodeling During Reprogramming by Nuclear Transfer
Tomoharu Osada1, Tadashige Nozaki, Mitsuko Masutani
1Drug Development Service Segment LSI Medience Corporation, 13-4, Uchikanda 1-chome, Chiyodaku, Tokyo 101-8517, Japan. osada.tomoharu@mg.medience.co.jp.
Abstract:
Accumulating evidence suggests that cloned mice production by the injection of a somatic cell nucleus into an enucleated oocyte is inefficient. DNA damage and chromatin remodeling failures that occur during embryogenesis following nuclear transfer (NT) might explain the poor development of cloned embryos. To avoid these problems, it is important to elucidate somatic chromatin remodeling after NT. Because polyADP-ribosylation, which is catalyzed mainly by poly(ADP-ribose) polymerase 1 (Parp1), is a major post-translational modification that facilitates DNA repair and chromatin remodeling, we examined the effects of Parp1 deficiency in developing NT embryos. Parp1 was located within the pseudo-pronuclei (PPN) of NT eggs. We observed that NT eggs, after activation by Sr2+, formed PPN with significantly more efficiency in Parp1-null embryos than in wild-type NT embryos. However, most the Parp1-null embryos stopped developing by the four-cell stage. Immunostaining for γH2AX foci, a marker of DNA double strand breaks, showed longer retention in the PPN of Parp1-/- donor NT embryos than in wild-type NT embryos, suggesting that, in the absence of Parp1, DNA breaks are slowly repaired and consequently, entry into the S phase might be delayed. Furthermore, decreases in histone H3 acetylation, H3 monomethylation at lysine 4, and H3 trimethylation at lysine 27 after the Sr2+ activation step were observed in the PPN of Parp1-/- donor embryos. Taken together, our data suggest that Parp1 is involved in the plastic remodeling of chromatin structure after NT by supporting DNA repair and specific histone code modifications.
Insights
Poly(ADP-ribose) polymerase 1 (Parp1) deficiency impairs cloned embryo development. Parp1 is crucial for DNA repair and histone modifications essential for chromatin remodeling after nuclear transfer (NT).
Area of Science:
- Reproductive biology
- Epigenetics
- Molecular biology
Background:
- Cloned mice production via nuclear transfer (NT) is inefficient, potentially due to DNA damage and chromatin remodeling failures.
- Poly(ADP-ribose) polymerase 1 (Parp1) plays a key role in DNA repair and chromatin remodeling through poly(ADP-ribosylation).
Purpose of the Study:
- To investigate the role of Parp1 in somatic chromatin remodeling after NT.
- To elucidate the impact of Parp1 deficiency on the development of cloned embryos.
Main Methods:
- Examined Parp1 localization in pseudo-pronuclei (PPN) of NT eggs.
- Assessed PPN formation efficiency and embryo development in wild-type and Parp1-null NT embryos after Sr2+ activation.
- Utilized immunostaining for γH2AX foci to detect DNA double-strand breaks.
- Analyzed histone modifications (acetylation, H3K4me1, H3K27me3) in PPN.
Main Results:
- Parp1 was found in the PPN of NT eggs.
- Parp1-null NT embryos showed more efficient PPN formation but arrested development at the four-cell stage.
- Parp1 deficiency led to prolonged retention of γH2AX foci, indicating delayed DNA repair and potential S-phase entry delay.
- Decreased histone H3 acetylation, H3K4me1, and H3K27me3 were observed in Parp1-null PPN.
Conclusions:
- Parp1 is essential for efficient DNA repair and histone modifications during chromatin remodeling post-NT.
- Parp1 deficiency compromises cloned embryo development by hindering plastic chromatin remodeling.
- Targeting Parp1-mediated pathways could potentially improve cloning efficiency.
More Related Videos
Related Concept Videos
Nucleosome Remodeling
Nucleosome remodeling complex
Eukaryotic cells have specialized enzymes called ATP-dependent nucleosome remodeling enzymes. These enzymes...
Restarting Stalled Replication Forks
Nucleotide Excision Repair
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
Nucleotide Excision Repair
Long-patch Base Excision Repair
DNA Damage can Stall the Cell Cycle

