Related Experiment Video
Updated: Apr 27, 2026

Deciphering the Structural Effects of Activating EGFR Somatic Mutations with Molecular Dynamics Simulation
Published on: May 20, 2020
The molecular mechanism of eukaryotic elongation factor 2 kinase activation
Clint D J Tavares1, Scarlett B Ferguson2, David H Giles2
1From the Graduate Program in Cell and Molecular Biology, the Division of Medicinal Chemistry, College of Pharmacy, clinttavares@utexas.edu.
Abstract:
Calmodulin (CaM)-dependent eukaryotic elongation factor 2 kinase (eEF-2K) impedes protein synthesis through phosphorylation of eukaryotic elongation factor 2 (eEF-2). It is subject to complex regulation by multiple upstream signaling pathways, through poorly described mechanisms. Precise integration of these signals is critical for eEF-2K to appropriately regulate protein translation rates. Here, an allosteric mechanism comprising two sequential conformations is described for eEF-2K activation. First, Ca(2+)/CaM binds eEF-2K with high affinity (Kd(CaM)(app) = 24 ± 5 nm) to enhance its ability to autophosphorylate Thr-348 in the regulatory loop (R-loop) by > 10(4)-fold (k(auto) = 2.6 ± 0.3 s(-1)). Subsequent binding of phospho-Thr-348 to a conserved basic pocket in the kinase domain potentially drives a conformational transition of the R-loop, which is essential for efficient substrate phosphorylation. Ca(2+)/CaM binding activates autophosphorylated eEF-2K by allosterically enhancing k(cat)(app) for peptide substrate phosphorylation by 10(3)-fold. Thr-348 autophosphorylation results in a 25-fold increase in the specificity constant (k(cat)(app)/K(m)(Pep-S) (app)), with equal contributions from k(cat)(app) and K(m)(Pep-S)(app), suggesting that peptide substrate binding is partly impeded in the unphosphorylated enzyme. In cells, Thr-348 autophosphorylation appears to control the catalytic output of active eEF-2K, contributing more than 5-fold to its ability to promote eEF-2 phosphorylation. Fundamentally, eEF-2K activation appears to be analogous to an amplifier, where output volume may be controlled by either toggling the power switch (switching on the kinase) or altering the volume control (modulating stability of the active R-loop conformation). Because upstream signaling events have the potential to modulate either allosteric step, this mechanism allows for exquisite control of eEF-2K output.
Insights
Calmodulin-dependent eukaryotic elongation factor 2 kinase (eEF-2K) activation involves a two-step allosteric mechanism. This process precisely regulates protein synthesis by controlling eEF-2 phosphorylation through conformational changes.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- Calmodulin (CaM)-dependent eukaryotic elongation factor 2 kinase (eEF-2K) regulates protein synthesis by phosphorylating eukaryotic elongation factor 2 (eEF-2).
- eEF-2K is controlled by complex signaling pathways through poorly understood mechanisms, necessitating precise integration for regulating translation rates.
Purpose of the Study:
- To elucidate the allosteric mechanism of eEF-2K activation.
- To understand how Ca(2+)/CaM and autophosphorylation at Thr-348 contribute to kinase activity and substrate binding.
Main Methods:
- Biochemical assays to measure binding affinities (Kd), autophosphorylation rates (k(auto)), and catalytic parameters (k(cat), K(m)) for peptide substrates.
- Analysis of the role of Thr-348 autophosphorylation in controlling catalytic output in cellular contexts.
Main Results:
- Ca(2+)/CaM binding enhances eEF-2K autophosphorylation of Thr-348 by over 10^4-fold.
- Phospho-Thr-348 binding to a basic pocket induces a conformational change essential for substrate phosphorylation.
- Ca(2+)/CaM further activates autophosphorylated eEF-2K, increasing catalytic rate (k(cat)(app)) by 10^3-fold.
- Thr-348 autophosphorylation increases the specificity constant by 25-fold, improving peptide substrate binding.
- In cells, Thr-348 autophosphorylation contributes over 5-fold to eEF-2 phosphorylation by active eEF-2K.
Conclusions:
- eEF-2K activation follows a two-step allosteric mechanism involving Ca(2+)/CaM binding and subsequent autophosphorylation at Thr-348.
- This mechanism allows for exquisite control of protein synthesis rates by modulating kinase output through distinct regulatory steps.
- The findings provide a fundamental understanding of eEF-2K regulation, analogous to an amplifier with adjustable output volume.
Related Concept Videos
MAPK Signaling Cascades
Transcription Elongation Factors
The transcription elongation is regulated via pausing of RNA polymerase on several occasions during transcription. In bacteria, these halts are necessary because the transcription of DNA into mRNA is coupled to the translation of that mRNA...
Transcription Elongation Factors
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
Amplifying Signals via Enzymatic Cascade
PI3K/mTOR/AKT Signaling Pathway

