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Updated: Jul 23, 2026

Light-mediated Reversible Modulation of the Mitogen-activated Protein Kinase Pathway during Cell Differentiation and Xenopus Embryonic Development
Published on: June 15, 2017
Modulation of MEK activity during G-CSF signaling alters proliferative versus differentiative balancing
M A Baumann1, C C Paul, S Lemley-Gillespie
1Research Service, Department of Veterans Affairs, Dayton, Ohio, USA. michael.baumann@wright.edu
Abstract:
Previous studies of the granulocyte colony stimulating factor (G-CSF) receptor have demonstrated that discrete signals direct proliferative and maturation signaling. Receptor deletion/mutant studies have shown that although activation of the ras-mitogen activated protein (MAP) kinase pathway is necessary for G-CSF directed proliferation, it is not necessary for maturation induced by this cytokine. We have assessed the effects of selective inhibition or overexpression of MAP kinase kinase (MEK) in a cell line model of G-CSF-induced neutrophil progenitor growth. Using the human G-CSF responsive MPD cell line, we specifically inhibited MEK using PD 98059 and also transfected MPD cells with a constitutively active MEK construct. We then exposed the cells to G-CSF and assessed the effects of MEK inhibition and forced expression on proliferation and differentiation. Inhibition of MEK followed by G-CSF stimulation consistently resulted in an early 2.5-fold increase in morphologically differentiated neutrophils expressing CD11b and CD16 and containing lactoferrin over that produced by G-CSF alone. MEK inhibition alone had little effect on the differentiation stage of these cells, although proliferation was impaired. Forced expression of activated MEK resulted in a three- to five-fold decrease in differentiated, lactoferrin containing neutrophilic cells resultant from G-CSF induction, and a commensurate increase in cell proliferation. These observations suggest that modulation of MAPK activation may be a control point for altering the balance between proliferation and differentiation in response to G-CSF. Physiologically, this control is likely exerted by costimulatory cytokines.
Insights
Granulocyte colony-stimulating factor (G-CSF) signaling involves the mitogen-activated protein (MAP) kinase pathway. Manipulating MAP kinase kinase (MEK) affects G-CSF-induced neutrophil proliferation and differentiation.
Area of Science:
- Cell Biology
- Hematopoiesis
- Signal Transduction
Background:
- Granulocyte colony-stimulating factor (G-CSF) receptor signaling regulates neutrophil progenitor proliferation and maturation.
- Activation of the ras-mitogen activated protein (MAP) kinase pathway is crucial for G-CSF-induced proliferation but not maturation.
Purpose of the Study:
- To investigate the role of MAP kinase kinase (MEK) in G-CSF-mediated neutrophil progenitor proliferation and differentiation.
- To assess the impact of MEK inhibition and overexpression on G-CSF-induced cellular responses.
Main Methods:
- Utilized the human G-CSF responsive MPD cell line.
- Selective inhibition of MEK using PD 98059.
- Transfection of MPD cells with a constitutively active MEK construct.
- Stimulation with G-CSF and assessment of proliferation and differentiation markers (CD11b, CD16, lactoferrin).
Main Results:
- MEK inhibition enhanced G-CSF-induced neutrophil differentiation by 2.5-fold, with impaired proliferation.
- Forced expression of activated MEK decreased G-CSF-induced differentiation by three- to five-fold, increasing proliferation.
- MEK inhibition alone minimally affected differentiation but impaired proliferation.
Conclusions:
- Modulation of MAPK activation by MEK serves as a control point for balancing proliferation and differentiation in G-CSF signaling.
- This regulatory mechanism is likely influenced by costimulatory cytokines in a physiological context.
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