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Vimentin binding to phosphorylated Erk sterically hinders enzymatic dephosphorylation of the kinase
Eran Perlson1, Izhak Michaelevski, Noga Kowalsman
1Department of Biological Chemistry, Weizmann Institute of Science, 76100 Rehovot, Israel.
Abstract:
Cleavage fragments of de novo synthesized vimentin were recently reported to interact with phosphorylated Erk1 and Erk2 MAP kinases (pErk) in injured sciatic nerve, thus linking pErk to a signaling complex retrogradely transported on importins and dynein. Here we clarify the structural basis for this interaction, which explains how pErk is protected from dephosphorylation while bound to vimentin. Pull-down and ELISA experiments revealed robust calcium-dependent binding of pErk to the second coiled-coil domain of vimentin, with observed affinities of binding increasing from 180 nM at 0.1 microM calcium to 15 nM at 10 microM calcium. In contrast there was little or no binding of non-phosphorylated Erk to vimentin under these conditions. Geometric and electrostatic complementarity docking generated a number of solutions wherein vimentin binding to pErk occludes the lip containing the phosphorylated residues in the kinase. Binding competition experiments with Erk peptides confirmed a solution in which vimentin covers the phosphorylation lip in pErk, interacting with residues above and below the lip. The same peptides inhibited pErk binding to the dynein complex in sciatic nerve axoplasm, and interfered with protection from phosphatases by vimentin. Thus, a soluble intermediate filament fragment interacts with a signaling kinase and protects it from dephosphorylation by calcium-dependent steric hindrance.
Insights
Vimentin fragments bind calcium-dependently to phosphorylated Erk kinases (pErk), shielding them from dephosphorylation. This interaction protects pErk within signaling complexes during nerve injury transport.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Vimentin fragments interact with phosphorylated Erk1/Erk2 MAP kinases (pErk) in injured sciatic nerves.
- This interaction links pErk to retrogradely transported signaling complexes involving importins and dynein.
Purpose of the Study:
- To elucidate the structural basis of the vimentin-pErk interaction.
- To understand how vimentin binding protects pErk from dephosphorylation.
Main Methods:
- Pull-down assays and ELISA to assess binding affinity.
- Calcium titration to determine binding dependence.
- Geometric and electrostatic docking to model the interaction interface.
- Peptide competition assays to validate binding sites and functional interference.
Main Results:
- Calcium-dependent binding of pErk to vimentin's second coiled-coil domain was observed, with affinity increasing from 180 nM to 15 nM as calcium levels rose.
- Non-phosphorylated Erk showed minimal binding to vimentin.
- Docking models indicated vimentin binding occludes the phosphorylation lip of pErk.
- Vimentin peptides competed for pErk binding to dynein and inhibited protection from phosphatases.
Conclusions:
- Vimentin fragments bind pErk in a calcium-dependent manner, sterically hindering dephosphorylation.
- This interaction protects the signaling kinase within transported complexes in nerve injury.
- The structural mechanism involves vimentin covering the pErk phosphorylation site.
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