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FAM122A ensures cell cycle interphase progression and checkpoint control as a SLiM-dependent substrate-competitive
Abstract:
The Ser/Thr protein phosphatase 2A (PP2A) is a highly conserved collection of heterotrimeric holoenzymes responsible for the dephosphorylation of many regulated phosphoproteins. Substrate recognition and the integration of regulatory cues are mediated by B regulatory subunits that are complexed to the catalytic subunit (C) by a scaffold protein (A). PP2A/B55 substrate recruitment was thought to be mediated by charge-charge interactions between the surface of B55α and its substrates. Challenging this view, we recently discovered a conserved SLiM [ RK ]- V -x-x-[ VI ]- R in a range of proteins, including substrates such as the retinoblastoma-related protein p107 and TAU (Fowle et al. eLife 2021;10:e63181). Here we report the identification of this SLiM in FAM122A, an inhibitor of B55α/PP2A. This conserved SLiM is necessary for FAM122A binding to B55α in vitro and in cells. Computational structure prediction with AlphaFold2 predicts an interaction consistent with the mutational and biochemical data and supports a mechanism whereby FAM122A uses the 'SLiM' in the form of a short α-helix to dock to the B55α top groove. In this model, FAM122A spatially constrains substrate access by occluding the catalytic subunit with a second α-helix immediately adjacent to helix 1. Consistently, FAM122A functions as a competitive inhibitor as it prevents binding of substrates in in vitro competition assays and the dephosphorylation of CDK substrates by B55α/PP2A in cell lysates. Ablation of FAM122A in human cell lines reduces the rate of proliferation, progression through cell cycle transitions and abrogates G1/S and intra-S phase cell cycle checkpoints. FAM122A-KO in HEK293 cells results in attenuation of CHK1 and CHK2 activation in response to replication stress. Overall, these data strongly suggest that FAM122A is a 'SLiM'-dependent, substrate-competitive inhibitor of B55α/PP2A that suppresses multiple functions of B55α in the DNA damage response and in timely progression through the cell cycle interphase.
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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