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.
Abstract:
Inhibitor of DNA binding proteins (Id1-Id4) function to inhibit differentiation and promote proliferation of many different cell types. Among the Id family members, Id2 has been most extensively studied in the central nervous system (CNS). Id2 contributes to cultured neural precursor cell (NPC) proliferation as well as to the proliferation of CNS tumors such as glioblastoma that are likely to arise from NPC-like cells. We identified three phosphorylation sites near the N-terminus of Id2 in NPCs. To interrogate the importance of Id2 phosphorylation, Id2(-/-) NPCs were modified to express wild type (WT) Id2 or an Id2 mutant protein that could not be phosphorylated at the identified sites. We observed that NPCs expressing this mutant lacking phosphorylation near the N-terminus had higher steady-state levels of Id2 when compared to NPCs expressing WT Id2. This elevated level was the result of a longer half-life and reduced proteasome-mediated degradation. Moreover, NPCs expressing constitutively de-phosphorylated Id2 proliferated more rapidly than NPCs expressing WT Id2, a finding consistent with the well-characterized function of Id2 in driving proliferation. Observing that phosphorylation of Id2 modulates the degradation of this important cell-cycle regulator, we sought to identify a phosphatase that would stabilize Id2 enhancing its activity in NPCs and extended our analysis to include human glioblastoma-derived stem cells (GSCs). We found that expression of the phosphatase PP2A altered Id2 levels. Our findings suggest that inhibition of PP2A may be a novel strategy to regulate the proliferation of normal NPCs and malignant GSCs by decreasing Id2 levels. Stem Cells 2016;34:1321-1331.
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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