FAM122A inhibition of PP2A-B55 through a bipartite binding mechanism

Iker Benavides-Puy1,2, Suzanne Vigneron3, Arminja N Kettenbach4,5

  • 1Center for Epigenetic Cell Memory, Danish Cancer Institute, Copenhagen, Denmark.

Insights

FAM122A regulates cell cycle progression by inhibiting PP2A-B55. This study reveals a novel C-terminal binding region and phosphorylation at Ser158, crucial for FAM122A

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biochemistry

Background:

  • FAM122A protein regulates cell cycle progression.
  • It functions by inhibiting the PP2A-B55 phosphoprotein phosphatase.
  • Previous studies identified N-terminal helical elements of FAM122A critical for PP2A-B55 binding.

Purpose of the Study:

  • To investigate the regulation of FAM122A inhibition towards PP2A-B55.
  • To identify novel regions and mechanisms governing the FAM122A-PP2A-B55 interaction.

Main Methods:

  • Systematic analysis of FAM122A-PP2A-B55 interaction in cellular systems.
  • Amino acid resolution scans of the FAM122A C-terminus (residues 150-170).
  • Functional assays in human cells and *Xenopus laevis* egg extracts.

Main Results:

  • A novel C-terminal region (residues 150-170) of FAM122A is essential for PP2A-B55 binding.
  • Both N-terminal helices and the C-terminal region contribute to binding, suggesting a bipartite mechanism.
  • Phosphorylation of Ser158 in the C-terminus is critical for PP2A-B55 inhibition and mitotic entry stimulation, and its occupancy is cell-cycle regulated.

Conclusions:

  • Uncovered novel aspects of FAM122A interaction with PP2A-B55.
  • Identified a bipartite binding mechanism involving N-terminal and C-terminal regions.
  • Proposed a regulatory mechanism for FAM122A inhibitory activity via Ser158 phosphorylation during the cell cycle.

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