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Published on: May 26, 2017
The activating dual phosphorylation of MAPK by MEK is nonprocessive
1Department of Pathology, and Howard Hughes Medical Institute, University of Virginia Health Sciences Center, Charlottesville 22908, USA.
Abstract:
Activation of mitogen-activated protein kinases (MAPKs), also known as extracellular-signal-regulated kinases (ERKs), by MAPK/extracellular protein kinase kinases (MEKs) requires phosphorylation at two sites. The first step in MAPK activation by MEK must be the formation of a MEK x MAPK enzyme-substrate complex, followed by phosphorylation producing monophosphorylated MAPK (pMAPK). Subsequently, one of two events may occur. (1) MEK catalyzes the second and fully activating phosphorylation of MAPK, producing ppMAPK (a processive mechanism). (2) The complex of MEK x pMAPK dissociates before the second phosphorylation occurs, full activation requiring a reassociation of pMAPK with MEK (a nonprocessive or distributive mechanism). Simulations indicate that these two mechanisms predict different kinetics of MAPK activation. Specifically, the nonprocessive mechanism predicts that there will be a paradoxical decrease in the rate of MAPK activation as the MAPK concentration is increased. The present study uses p42 MAPK, also known as ERK2, and MEK1 as representatives of their respective classes of enzymes. We find that increasing the ERK2 concentration decreases the rate of activation by a mechanism which does not involve inhibition of MEK1 function. The accumulation of the active, doubly phosphorylated ERK2 (ppERK2) was directly assessed using a phosphorylation-state-specific antibody. The rate of accumulation of ppERK2 is decreased by increasing the ERK2 concentration. Therefore, the mechanism of ERK2 activation by MEK1 in vitro is nonprocessive.
Insights
Mitogen-activated protein kinase (MAPK) activation by MEK requires two phosphorylations. This study shows that increasing ERK2 concentration paradoxically decreases activation rate, indicating a nonprocessive mechanism.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Mitogen-activated protein kinases (MAPKs), or extracellular-signal-regulated kinases (ERKs), are crucial signaling molecules.
- MAPK activation by MAPK/extracellular protein kinase kinases (MEKs) involves sequential phosphorylation at two sites.
- Two proposed mechanisms for MAPK activation are processive (single enzyme-substrate complex) and nonprocessive (dissociation and reassociation).
Purpose of the Study:
- To investigate the kinetic mechanism of ERK2 activation by MEK1.
- To determine whether ERK2 activation by MEK1 follows a processive or nonprocessive pathway.
- To elucidate the relationship between enzyme and substrate concentrations in MAPK activation kinetics.
Main Methods:
- Utilized p42 MAPK (ERK2) and MEK1 as model enzymes.
- Performed kinetic assays to measure the rate of ERK2 activation at varying ERK2 concentrations.
- Employed a phosphorylation-state-specific antibody to quantify the accumulation of doubly phosphorylated ERK2 (ppERK2).
Main Results:
- Increasing ERK2 concentration led to a decreased rate of ERK2 activation.
- This decrease in activation rate was not due to MEK1 inhibition.
- The rate of ppERK2 accumulation was inversely correlated with ERK2 concentration.
Conclusions:
- The experimental findings support a nonprocessive mechanism for ERK2 activation by MEK1 in vitro.
- ERK2 activation by MEK1 does not occur through a single, processive enzyme-substrate complex.
- The study provides kinetic evidence for a distributive mechanism in MAPK activation.
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