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.

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.

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