An oocyte-specific ELAVL2 isoform is a translational repressor ablated from meiotically competent antral oocytes

Katerina Chalupnikova1, Petr Solc2, Vadym Sulimenko1

  • 1Institute of Molecular Genetics AS CR; Prague, Czech Republic.

Insights

Maternal ELAVL2 protein is crucial for mouse oocyte development, acting as a translational repressor. Its reduction during the NSN/SN transition is key for acquiring full developmental competence.

Area of Science:

  • Reproductive Biology
  • Molecular Biology
  • Developmental Biology

Background:

  • Oocyte developmental competence is acquired during the growth phase, marked by chromatin configuration changes (NSN to SN).
  • Cytoplasmic factors influencing the NSN/SN transition and developmental competence remain largely unknown.
  • ELAVL2 (embryonic lethal abnormal vision 2) is an RNA-binding protein with known roles in post-transcriptional regulation.

Purpose of the Study:

  • To investigate the functional role of maternal ELAVL2 in mouse oocyte maturation and developmental competence.
  • To elucidate the dynamic changes of ELAVL2 expression during oocyte development and its impact on chromatin configuration.
  • To understand ELAVL2's function as a translational repressor in the context of oocyte quality.

Main Methods:

  • Functional analysis of the Elavl2 gene and its oocyte-specific isoform (ELAVL2°).
  • Manipulation of Elavl2 expression (overexpression and knockdown) during meiotic maturation.
  • Assessment of oocyte developmental competence, chromosome segregation, and translational activity.

Main Results:

  • ELAVL2° is abundant in fully grown NSN oocytes and decreases during the NSN/SN transition.
  • Overexpression of ELAVL2° leads to chromosome segregation errors, while its premature reduction impairs oocyte maturation.
  • Elavl2 knockdown stimulates translation in fully grown oocytes, indicating its repressive role.

Conclusions:

  • ELAVL2 acts as a pleiotropic translational repressor essential for efficient oocyte growth and maturation.
  • The regulated decrease of ELAVL2 during the NSN/SN transition is critical for acquiring full developmental competence.
  • ELAVL2 plays an ambivalent role, supporting oocyte growth and enabling competence acquisition upon its removal.

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