Analysis of mRNA associated factors during bovine oocyte maturation and early embryonic development

Corinna Siemer1, Tatjana Smiljakovic, Monika Bhojwani

  • 1Research Institute for the Biology of Farm Animals (FBN) Dummerstorf, 18196 Dummerstorf, Germany.

Insights

Gene expression during bovine oocyte maturation and early development is controlled by changes in mRNA-binding proteins. Reduced poly-(A)-binding proteins (PABP1 and 3) likely repress translation in early embryos.

Area of Science:

  • Molecular Biology
  • Developmental Biology
  • Reproductive Biology

Background:

  • Translational control of gene expression is crucial during development when transcription is limited.
  • The closed-loop model describes translational initiation involving 5' cap and 3' poly-(A) tail interactions.

Purpose of the Study:

  • To analyze key mRNA-binding proteins and associated kinases during bovine oocyte maturation and early embryonic development.
  • To understand the regulation of translational initiation at the transition from oocyte to embryo.

Main Methods:

  • In vitro maturation of bovine oocytes and subsequent embryonic development to the 16-cell stage.
  • Analysis of eIF4F complex components, eIF4E repressors, and 3'-end factors (PABP, PAIP, CPEB, Maskin).
  • Investigation of kinase activities (PKA, PKB, PKC, CDKs, ATM/ATR, MAPK) involved in protein phosphorylation.

Main Results:

  • Significant phosphorylation of target proteins by various kinases was observed in M II oocytes.
  • Key changes in mRNA-binding factor abundance and phosphorylation occurred between M II oocytes and 2-cell embryos.
  • Reduced abundance of PABP1 and 3, and a Maskin-like protein, impacted eIF4F complex formation and translational initiation.

Conclusions:

  • Translational initiation during early bovine development is regulated by altered abundance and phosphorylation of 5' and 3' mRNA-associated factors.
  • Differences in poly-(A)-binding proteins (PABP1, 3), their repressor PAIP2, and Maskin are critical for this regulation.
  • Despite changes, eIF4F complex formation persists, suggesting overall translation repression is linked to reduced PABP levels in early development.