Mechanism of activation of ERK2 by dual phosphorylation

C N Prowse1, J Lew

  • 1Department of Molecular, Cellular and Developmental Biology, Interdepartmental Program in Biochemistry and Molecular Biology, University of California, Santa Barbara, California 93106, USA.

Insights

Dual phosphorylation significantly enhances the catalytic efficiency of mitogen-activated protein (MAP) kinases like ERK2. This process, crucial for cell signaling, involves structural changes that accelerate key reaction steps, particularly phosphoryl group transfer.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Enzymology

Background:

  • Mitogen-activated protein (MAP) kinases require dual phosphorylation for activation.
  • ERK2 (extracellular signal-regulated kinase 2) undergoes structural changes upon dual phosphorylation, including active site closure and catalytic residue alignment.

Purpose of the Study:

  • To investigate the specific effects of dual phosphorylation on individual catalytic reaction steps in ERK2.
  • To elucidate the mechanisms behind the rate enhancement observed in dual-phosphorylated ERK2.

Main Methods:

  • Kinetic analysis of ERK2 catalytic activity.
  • Solvent viscosometric studies to determine equilibrium dissociation constants (K(d)) for ATP and myelin basic protein.

Main Results:

  • Dual phosphorylation increases ERK2's overall catalytic efficiency by ~600,000-fold and turnover rate by ~50,000-fold.
  • The primary rate enhancement stems from a ~60,000-fold increase in the phosphoryl group transfer step, significantly higher than the ~2000-fold enhancement in the ATPase reaction.
  • Moderate decreases in K(d) for ATP and myelin basic protein were observed.

Conclusions:

  • The enhanced rate of phosphoryl group transfer in ERK2 is attributed to both optimized positioning of residues stabilizing ATP and significant stabilization of the protein phosphoacceptor group.
  • ERK2 activation mechanism shares similarities with Cdk2 (cyclin-dependent kinase 2), although Cdk2 activation involves cyclin binding and single phosphorylation.

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