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Negative modulation of membrane localization of the Raf-1 protein kinase by hyperphosphorylation
M Wartmann1, P Hofer, P Turowski
1Friedrich Miescher Institute, P. O. Box 2543, CH-4002 Basel, Switzerland.
Abstract:
The serine/threonine-specific protein kinase Raf-1 plays a key role in mitogenic signal transduction by coupling Ras to the mitogen-activated protein (MAP) kinase cascade. Ras-mediated translocation to the plasma membrane represents a crucial step in the process of serum-stimulated Raf-1 kinase activation. The exact role of the multisite phosphorylation in Raf regulation, however, is not clear. We have previously reported that the mobility shift-associated hyperphosphorylation of Raf correlates with a reduction of serum-stimulated Raf kinase activity (Wartmann, M., and Davis, R. J. (1994) J. Biol. Chem. 269, 6695-6701). Here we show that incubation of serum-starved CHO cells with D609, a purported inhibitor of phosphatidylcholine-specific phospholipase C, also results in a mobility shift of Raf-1 that is due to hyperphosphorylation on sites identical to those observed following mitogen stimulation. Subcellular fractionation analyses revealed that D609-induced mobility shift-associated hyperphosphorylation was paralleled by a decreased membrane association of Raf-1. Similar results were obtained in an in vitro reconstitution system. Furthermore, PD98059, a specific inhibitor of activation of the MAP kinase kinase MEK, prevented D609-induced Raf hyperphosphorylation and restored the amount of membrane-bound Raf to control levels. Taken together, these data suggest that mobility shift-associated hyperphosphorylation of Raf-1, by virtue of reducing the amount of plasma membrane-bound Raf-1, represents a negative feedback mechanism contributing to the desensitization of the MAP kinase signaling cascade.
Insights
D609 causes Raf-1 hyperphosphorylation, reducing its membrane binding and inhibiting the MAP kinase cascade. This suggests a negative feedback mechanism in signal transduction.
Area of Science:
- Molecular Biology
- Cell Signaling
- Biochemistry
Background:
- Raf-1 is a serine/threonine-specific protein kinase crucial for mitogenic signal transduction.
- Ras-mediated translocation to the plasma membrane is vital for Raf-1 kinase activation.
- The role of Raf-1 multisite phosphorylation in its regulation remains unclear.
Purpose of the Study:
- To investigate the effect of D609, a phospholipase C inhibitor, on Raf-1 phosphorylation and activity.
- To elucidate the role of D609-induced hyperphosphorylation in Raf-1 membrane association and signaling.
- To understand the regulatory mechanisms of the MAP kinase cascade.
Main Methods:
- Utilized CHO cells and an in vitro reconstitution system.
- Analyzed Raf-1 mobility shift and hyperphosphorylation.
- Performed subcellular fractionation to assess membrane association.
- Employed PD98059, a MEK inhibitor, to study signaling pathways.
Main Results:
- D609 induced Raf-1 hyperphosphorylation and a mobility shift, similar to mitogen stimulation.
- D609 treatment decreased Raf-1 membrane association.
- PD98059 inhibited D609-induced Raf-1 hyperphosphorylation and restored membrane binding.
- D609-induced hyperphosphorylation correlated with reduced Raf-1 kinase activity.
Conclusions:
- D609-induced Raf-1 hyperphosphorylation reduces plasma membrane-bound Raf-1.
- This process acts as a negative feedback mechanism, desensitizing the MAP kinase signaling cascade.
- Raf-1 hyperphosphorylation plays a critical role in regulating signal transduction pathways.