Phosphorylation Regulates Id2 Degradation and Mediates the Proliferation of Neural Precursor Cells

Jaclyn M Sullivan1,2, Matthew C Havrda1,3, Arminja N Kettenbach1,4

  • 1Pharmacology and Toxicology, Norris Cotton Cancer Center, One Medical Center Drive, Lebanon, NH, 03756.

Stem Cells (Dayton, Ohio)
|January 13, 2016
PubMed

Insights

Phosphorylation regulates the stability and proliferation-driving activity of Inhibitor of DNA binding protein 2 (Id2). Inhibiting the phosphatase PP2A decreases Id2 levels, potentially controlling neural precursor and glioblastoma stem cell proliferation.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Cancer Biology

Background:

  • Inhibitor of DNA binding proteins (Id1-Id4) regulate cell differentiation and proliferation.
  • Id2 is crucial for neural precursor cell (NPC) proliferation and CNS tumor growth, like glioblastoma.
  • Id2 phosphorylation sites near its N-terminus were identified in NPCs.

Purpose of the Study:

  • To investigate the functional significance of Id2 N-terminal phosphorylation in NPCs.
  • To determine how Id2 phosphorylation affects its stability and degradation.
  • To identify phosphatases regulating Id2 levels and explore therapeutic strategies for glioblastoma.

Main Methods:

  • Generated Id2-deficient NPCs expressing either wild-type (WT) Id2 or a non-phosphorylatable Id2 mutant.
  • Assessed Id2 protein levels, half-life, and proteasomal degradation.
  • Investigated the effect of the phosphatase PP2A on Id2 levels in NPCs and glioblastoma-derived stem cells (GSCs).

Main Results:

  • NPCs expressing non-phosphorylatable Id2 exhibited higher steady-state Id2 levels due to reduced proteasomal degradation and longer half-life.
  • Constitutively de-phosphorylated Id2 led to increased NPC proliferation compared to WT Id2.
  • PP2A phosphatase expression modulated Id2 levels in both NPCs and GSCs.

Conclusions:

  • Id2 phosphorylation near the N-terminus regulates its stability and degradation.
  • Modulating Id2 phosphorylation impacts NPC proliferation.
  • PP2A plays a role in regulating Id2 levels, suggesting PP2A inhibition as a potential strategy to control NPC and GSC proliferation by reducing Id2 levels.

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