Temporal regulation of prenatal embryonic development by paternal imprinted loci

Sci China Life Sci. 2020 Jan;63(1):1-17. doi: 10.1007/s11427-019-9817-6. Epub 2019 Sep 17.

Abstract

Paternal imprinted genes (H19 and Gtl2) are pivotal for prenatal embryonic development in mice. Nongrowing oocytes and sperm- or oocyte-originated haploid embryonic stem cells (haESCs) carrying both H19-DMR (differentially DNA-methylated region) and IG (intergenic)-DMR deletions that partially mimic paternal imprinting of H19-Igf2 and Dlk1-Dio3 can be employed as sperm replacement to efficiently support full-term embryonic development. However, how H19-DMR and IG-DMR act together to regulate embryonic development is still largely unknown. Here, using androgenetic haESC (AG-haESC)-mediated semi-cloned (SC) technology, we showed that paternal H19-DMR and IG-DMR are not essential for pre-implantation development of SC embryos generated through injection of AG-haESCs into oocytes. H19-DMR plays critical roles before 12.5 days of gestation while IG-DMR is essential for late-gestation of SC embryos. Interestingly, we found that combined deletions of H19 and H19-DMR can further improve the efficiency of normal development of SC embryos at mid-gestation compared to DKO SC embryos. Transcriptome and histology analyses revealed that H19 and H19-DMR combined deletions rescue the placental defects. Furthermore, we showed that H19, H19-DMR and IG-DMR deletions (TKO) give rise to better prenatal and postnatal embryonic development of SC embryos compared to DKO. Together, our results indicate the temporal regulation of paternal imprinted loci during embryonic development.

Keywords: Dlk1-Dio3; H19-Igf2; embryonic development; imprinted loci; semi-cloned technology; temporal regulation.

MeSH terms

  • Animals
  • Base Sequence
  • Calcium-Binding Proteins / genetics
  • DNA Methylation
  • Embryonic Development / genetics*
  • Embryonic Stem Cells / metabolism*
  • Female
  • Gene Expression Regulation, Developmental
  • Gene Library
  • Genomic Imprinting
  • Haploidy
  • Humans
  • Insulin-Like Growth Factor II / genetics
  • Mice
  • Models, Animal
  • Pregnancy

Substances

  • Calcium-Binding Proteins
  • Dlk1 protein, mouse
  • Insulin-Like Growth Factor II