Analysis of extracellular signal-regulated kinase 2 function in neural stem/progenitor cells via nervous
Osamu Imamura1, Yasushi Satoh, Shogo Endo
1Department of Biochemistry, National Defense Medical College, Namiki, Tokorozawa, Japan.
Abstract:
Extracellular signal-regulated kinase 2 (ERK2) is involved in a variety of cell fate decisions during development, but its exact role in this process remains to be determined. To specifically focus on the role of ERK2 in the brain, and to avoid early lethalities, we used a conditional gene-targeting approach to preferentially inactivate Erk2 in the embryonic mouse brain. The resulting mutant mice were viable and were relatively normal in overall appearance. However, the loss of Erk2 resulted in a diminished proliferation of neural stem cells in the embryonic ventricular zone (VZ), although the survival and differentiation of these cells was unaffected. The multipotent neural progenitor cells (NPCs) isolated from ERK2-deficient brains also showed impaired proliferation, reduced self-renewal ability, and increased apoptosis. By neurosphere differentiation analysis we further observed that lineage-restricted glial progenitors were increased in ERK2-deficient mice. The decline in the self-renewal ability and multipotency of NPCs resulting from the loss of ERK2 was found to be caused at least in part by upregulation of the JAK-STAT signaling pathway and reduced G1/S cell cycle progression. Furthermore, by global expression analysis we found that neural stem cell markers, including Tenascin C NR2E1 (Tlx), and Lgals1 (Galectin-1), were significantly downregulated, whereas several glial lineage markers were upregulated in neurospheres derived from ERK2-deficient mice. Our results thus suggest that ERK2 is required both for the proliferation of neural stem cells in the VZ during embryonic development and in the maintenance of NPC multipotency by suppressing the commitment of these cells to a glial lineage.
Insights
Extracellular signal-regulated kinase 2 (ERK2) is crucial for neural stem cell proliferation and multipotency in embryonic brain development. Loss of ERK2 impairs neural stem cell self-renewal and promotes glial lineage commitment.
Area of Science:
- Neuroscience
- Developmental Biology
- Molecular Biology
Background:
- Extracellular signal-regulated kinase 2 (ERK2) plays a role in cell fate decisions.
- Its specific function in embryonic brain development is not fully understood.
Purpose of the Study:
- To investigate the precise role of ERK2 in embryonic mouse brain development.
- To elucidate the mechanisms by which ERK2 influences neural stem cell behavior.
Main Methods:
- Conditional gene-targeting to inactivate Erk2 in the embryonic mouse brain.
- Analysis of neural stem cell proliferation, survival, and differentiation.
- Neurosphere differentiation assays and global gene expression analysis.
Main Results:
- Conditional inactivation of Erk2 in the embryonic brain led to viable mice with normal appearance.
- Loss of ERK2 diminished neural stem cell proliferation in the ventricular zone.
- ERK2-deficient neural progenitor cells exhibited impaired proliferation, reduced self-renewal, increased apoptosis, and a shift towards glial lineage.
- Upregulation of JAK-STAT signaling and reduced G1/S cell cycle progression were observed.
- Downregulation of neural stem cell markers (Tlx, Galectin-1) and upregulation of glial markers occurred.
Conclusions:
- ERK2 is essential for embryonic neural stem cell proliferation in the ventricular zone.
- ERK2 maintains neural progenitor cell multipotency by suppressing glial lineage commitment.
- ERK2 regulates neural stem cell fate through the JAK-STAT pathway and cell cycle progression.


