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Identification of Key Factors Regulating Self-renewal and Differentiation in EML Hematopoietic Precursor Cells by RNA-sequencing Analysis
Published on: November 11, 2014
ERK inhibition promotes neuroectodermal precursor commitment by blocking self-renewal and primitive streak formation
Yang Yu1,2, Xiaoxiao Wang1,2, Xiaoxin Zhang1
1State Key Laboratory of Stem Cell and Reproductive Biology, Institute of Zoology, Chinese Academy of Sciences, 1 Beichen West Road, Chaoyang District, Beijing, 100101, China.
Background:
Pluripotent stem cells hold great promise for regenerative medicine. However, before clinical application, reproducible protocols for pluripotent stem cell differentiation should be established. Extracellular signal-regulated protein kinase (ERK) signaling plays a central role for the self-renewal of epiblast stem cells (EpiSCs), but its role for subsequent germ layer differentiation is still ambiguous. We proposed that ERK could modulate differentiation of the epiblast.
Methods:
PD0325901 was used to inhibit ERK activation during the differentiation of embryonic stem cells and EpiSCs. Immunofluorescence, western blot analysis, real-time PCR and flow cytometry were used to detect germ layer markers and pathway activation.
Results:
We demonstrate that the ERK phosphorylation level is lower in neuroectoderm of mouse E7.5 embryos than that in the primitive streak. ERK inhibition results in neural lineage commitment of epiblast. Mechanistically, PD0325901 abrogates the expression of primitive streak markers by β-catenin retention in the cytoplasm, and inhibits the expression of OCT4 and NANOG during EpiSC differentiation. Thus, EpiSCs differentiate into neuroectodermal lineage efficiently under PD0325901 treatment. These results suggest that neuroectoderm differentiation does not require extrinsic signals, supporting the default differentiation of neural lineage.
Conclusions:
We report that a single ERK inhibitor, PD0325901, can specify epiblasts and EpiSCs into neural-like cells, providing an efficient strategy for neural differentiation.
Insights
Inhibiting extracellular signal-regulated protein kinase (ERK) signaling with PD0325901 promotes neural lineage commitment in epiblast stem cells (EpiSCs). This provides an efficient strategy for neural differentiation, crucial for regenerative medicine applications.
Area of Science:
- Stem cell biology
- Developmental biology
- Regenerative medicine
Background:
- Pluripotent stem cells are key for regenerative medicine, but reproducible differentiation protocols are needed.
- Extracellular signal-regulated protein kinase (ERK) signaling is vital for epiblast stem cell self-renewal but its role in differentiation is unclear.
- This study investigates the role of ERK in epiblast differentiation.
Purpose of the Study:
- To determine if ERK signaling modulates epiblast differentiation.
- To explore the potential of ERK inhibition for directing stem cell differentiation towards specific lineages.
Main Methods:
- Used PD0325901 to inhibit ERK activation in embryonic stem cells and EpiSCs.
- Employed immunofluorescence, western blot, real-time PCR, and flow cytometry to analyze germ layer markers and pathway activation.
Main Results:
- ERK phosphorylation is lower in neuroectoderm compared to the primitive streak in E7.5 mouse embryos.
- ERK inhibition via PD0325901 induced neural lineage commitment of epiblast stem cells.
- PD0325901 treatment reduced primitive streak markers and inhibited OCT4/NANOG expression, promoting neuroectodermal differentiation.
Conclusions:
- A single ERK inhibitor, PD0325901, can specify epiblasts and EpiSCs into neural-like cells.
- This offers an efficient strategy for neural differentiation.
- Neuroectoderm differentiation may occur by default without extrinsic signals.
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