Acetyl CoA carboxylase inactivation and meiotic maturation in mouse oocytes

Deepa S Valsangkar1, Stephen M Downs1

  • 1Department of Biological Sciences, Marquette University, Milwaukee, Wisconsin.

Insights

Acetyl CoA carboxylase (ACAC) inactivation stimulates fatty acid oxidation (FAO) and promotes meiotic resumption in mouse oocytes. This finding supports a model where PRKA-induced FAO is crucial for oocyte maturation.

Area of Science:

  • Reproductive Biology
  • Molecular Endocrinology
  • Cellular Metabolism

Background:

  • Meiotic resumption in mouse oocytes is triggered by hormones or PRKA activation.
  • This process is linked to increased fatty acid oxidation (FAO).
  • PRKA activates FAO by phosphorylating and inactivating acetyl CoA carboxylase (ACAC).

Purpose of the Study:

  • To investigate the role of ACAC inactivation in meiotic resumption.
  • To examine how ACAC activity affects fatty acid oxidation and meiotic progression in mouse oocytes.

Main Methods:

  • Used ACAC inhibitors (CP-640186, Soraphen A) to study meiotic resumption in vitro.
  • Assessed the impact of FAO modulation using etomoxir and citrate.
  • Compared wild-type and Acacb(-/-) oocytes to analyze ACAC isoform function.

Main Results:

  • ACAC inhibitors significantly stimulated meiotic resumption and increased FAO.
  • Etomoxir blocked ACAC inhibitor-induced meiotic resumption and FAO.
  • ACAC activators and malonyl CoA decarboxylase inhibitors suppressed hormone-induced meiotic resumption and FAO.
  • Acacb(-/-) oocytes exhibited higher FAO and reduced meiotic arrest.

Conclusions:

  • ACAC inactivation is a key mechanism promoting meiotic resumption in mouse oocytes.
  • PRKA-mediated stimulation of FAO, via ACAC inactivation, is essential for oocyte maturation.
  • These findings elucidate the metabolic regulation of oocyte meiotic progression.

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