Two Distinct Mechanisms of PP2A Regulation by Methylesterase PME-1 Are Both Essential for Mouse Development

Shunta Ikeda1, Sana Ando1, Nana Kishida1

  • 1Laboratory of Veterinary Pharmacology, Joint Faculty of Veterinary Medicine, Yamaguchi University, Yamaguchi, Japan.

Insights

Protein methylesterase-1 (PME-1) has dual roles in regulating protein phosphatases. Disrupting its methylesterase or inhibitory functions in mice causes distinct developmental defects, highlighting PME-1

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Developmental Biology

Background:

  • Protein methylesterase-1 (PME-1) regulates protein phosphatases 2A (PP2A) and PP4.
  • PME-1 dysregulation is linked to neurodegenerative diseases and cancer.
  • PME-1 possesses both methylesterase and PP2A inhibitory activities, with unclear in vivo roles.

Purpose of the Study:

  • To investigate the distinct in vivo functions of PME-1's methylesterase and PP2A inhibitory activities.
  • To generate and characterize PME-1 knock-in mouse models with specific loss-of-function mutations.

Main Methods:

  • Generation of PME-1 S156A (methylesterase-deficient) and M335D (PP2A inhibitory-deficient) knock-in mice.
  • Phenotypic analysis including histology, gene expression, and cell-based assays.
  • Assessment of developmental outcomes, apoptosis, inflammation, and metabolic parameters.

Main Results:

  • S156A mutation caused systemic apoptosis, brain atrophy, cerebellar abnormalities, increased inflammation, and altered mitochondrial function.
  • M335D mutation led to neonatal death with olfactory epithelium apoptosis and loss of olfaction.
  • Both mutations exhibited distinct developmental phenotypes compared to PME-1 null mice.

Conclusions:

  • PME-1 regulates mouse development through distinct mechanisms involving its methylesterase and PP2A inhibitory functions.
  • Loss of methylesterase activity impacts brain development and cellular metabolism.
  • Loss of PP2A inhibitory activity affects olfactory development and survival.