FAM122A ensures cell cycle interphase progression and checkpoint control as a SLiM-dependent substrate-competitive

Insights

FAM122A acts as a competitive inhibitor of protein phosphatase 2A (PP2A)/B55α by binding via a conserved SLiM. This inhibition impacts cell proliferation and DNA damage response.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biochemistry

Background:

  • Protein Phosphatase 2A (PP2A) holoenzymes regulate phosphoproteins via B subunits.
  • B55α/PP2A substrate recruitment was previously attributed to charge-charge interactions.
  • A conserved Short Linear Motif (SLiM) was recently identified in PP2A substrates.

Approach:

  • Identified a conserved SLiM in FAM122A, a known B55α/PP2A inhibitor.
  • Investigated FAM122A binding to B55α using in vitro and cellular assays.
  • Utilized AlphaFold2 for computational structure prediction of the interaction.
  • Performed in vitro competition assays and analyzed cell lysates for PP2A activity.
  • Assessed the impact of FAM122A ablation on cell proliferation, cell cycle progression, and DNA damage response pathways.

Key Points:

  • A conserved SLiM in FAM122A is essential for its binding to B55α.
  • Computational modeling suggests FAM122A uses the SLiM to form an alpha-helix, docking to B55α and inhibiting substrate access.
  • FAM122A functions as a competitive inhibitor, blocking substrate binding and dephosphorylation of CDK substrates by B55α/PP2A.
  • FAM122A knockout in human cells impairs proliferation, cell cycle progression, and abrogates checkpoints.
  • FAM122A deficiency attenuates CHK1 and CHK2 activation during replication stress.

Conclusions:

  • FAM122A is a SLiM-dependent, competitive inhibitor of B55α/PP2A.
  • FAM122A regulates B55α functions in DNA damage response and cell cycle progression.
  • FAM122A plays a critical role in maintaining cell proliferation and checkpoint integrity.

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