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MEK hyperphosphorylation coincides with cell cycle shut down of cultured smooth muscle cells
Sabina Vogel1, Thomas Kubin, Dietmar von der Ahe
1Department of Experimental Cardiology, Max Planck Institute, Bad Nauheim, Germany.
Abstract:
Smooth muscle cells (SMCs) form the backbone of arteries and their proliferation hallmarks collateral vessel growth, a process termed arteriogenesis, as well as pathogenic responses such as restenosis. Since signaling pathways in SMCs are the main targets for therapeutic interventions, we aimed to determine how and to what extent the activation of the ubiquitous MEK-ERK signaling pathway correlates with important in vivo phenomena such as dedifferentiation, nuclear activation and proliferation of SMCs. Specificity of this pathway was monitored using MEK inhibitors UO126 and PD98059 in platelet derived growth factor-AB (PDGF-AB)- and fibroblast growth factor-2 (FGF-2)-stimulated SMCs. PDGF-AB induced a rapid MEK activation followed by phosphorylation of the MEK substrates ERK1/2 while FGF-2 showed a less pronounced and delayed activation. Both growth factors triggered a marked phosphorylation of c-Myc and expression of Egr1. Pretreatment with MEK inhibitors suppressed the activation of the ERK cascade, abolished the down-regulation of desmin and led to cell cycle arrest. However, the reversibility of p27Kip1 down-regulation by UO126 was mainly observed after PDGF-AB stimulation, indicating MEK independent p27Kip1 down-regulation by FGF-2. Surprisingly, treatment of SMCs with UO126 or PD98059 increased the level of MEK phosphorylation in a dose dependent manner at serine residues 217/221 in the presence as well as in the absence of both growth factors. Our results strongly imply that depending on the environmental context phosphorylation of serines 217/221 serves as an "on" as well as an "off " switch.
Insights
The MEK-ERK pathway in smooth muscle cells (SMCs) influences proliferation and dedifferentiation. MEK inhibitors block ERK activation but paradoxically increase MEK phosphorylation, suggesting context-dependent signaling.
Area of Science:
- Vascular biology
- Cell signaling
Background:
- Smooth muscle cells (SMCs) are crucial for arterial structure and function.
- SMC proliferation drives arteriogenesis and pathogenic restenosis.
- Targeting SMC signaling pathways is key for therapeutic interventions.
Purpose of the Study:
- To investigate the correlation between MEK-ERK pathway activation and SMC in vivo phenomena.
- To determine the role of MEK-ERK signaling in SMC dedifferentiation, nuclear activation, and proliferation.
Main Methods:
- Utilized MEK inhibitors (UO126, PD98059) to study SMCs stimulated with platelet-derived growth factor-AB (PDGF-AB) and fibroblast growth factor-2 (FGF-2).
- Monitored MEK and ERK1/2 phosphorylation, c-Myc and Egr1 expression, and desmin/p27Kip1 regulation.
- Assessed cell cycle arrest and MEK phosphorylation at serine residues 217/221.
Main Results:
- PDGF-AB induced rapid MEK-ERK activation; FGF-2 showed delayed activation.
- MEK inhibitors suppressed ERK cascade, abolished desmin down-regulation, and caused cell cycle arrest.
- FGF-2-induced p27Kip1 down-regulation was MEK-independent.
- MEK inhibitors paradoxically increased MEK phosphorylation at serines 217/221.
Conclusions:
- MEK-ERK pathway activation is linked to SMC proliferation and dedifferentiation.
- MEK inhibitors can block ERK signaling but have complex effects on MEK itself.
- Phosphorylation of MEK serines 217/221 may act as a context-dependent switch.
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