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The autoinhibited state of MKK4: Phosphorylation, putative dimerization and R134W mutant studied by molecular
Ekaterina Shevchenko1, Antti Poso1,2, Tatu Pantsar2,3
1Dept of Internal Medicine VIII, University Hospital Tübingen, Otfried-Müller-Strasse 14, 72076 Tübingen, Germany.
Abstract:
Protein kinases are crucial components of the cell-signalling machinery that orchestrate and convey messages to their downstream targets. Most often, kinases are activated upon a phosphorylation to their activation loop, which will shift the kinase into the active conformation. The Dual specificity mitogen-activated protein kinase kinase 4 (MKK4) exists in a unique conformation in its inactive unphosphorylated state, where its activation segment appears in a stable α-helical conformation. However, the precise role of this unique conformational state of MKK4 is unknown. Here, by all-atom molecular dynamics simulations (MD simulations), we show that this inactive state is unstable as monomer even when unphosphorylated and that the phosphorylation of the activation segment further destabilizes the autoinhibited α-helix. The specific phosphorylation pattern of the activation segment has also a unique influence on MKK4 dynamics. Furthermore, we observed that this specific inactive state is stable as a dimer, which becomes destabilized upon phosphorylation. Finally, we noticed that the most frequent MKK4 mutation observed in cancer, R134W, which role has not been disclosed to date, contributes to the dimer stability. Based on these data we postulate that MKK4 occurs as a dimer in its inactive autoinhibited state, providing an additional layer for its activity regulation.
Insights
Dual specificity mitogen-activated protein kinase kinase 4 (MKK4) exists in a unique inactive state. This study reveals MKK4 is stable as a dimer, not a monomer, and cancer mutations impact dimer stability.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- Protein kinases are vital for cell signaling, often activated by phosphorylation.
- Dual specificity mitogen-activated protein kinase kinase 4 (MKK4) has a unique inactive conformation with an α-helical activation segment.
Purpose of the Study:
- To investigate the role of MKK4's unique inactive conformational state.
- To understand the dynamics and regulation of MKK4, including the impact of phosphorylation and mutations.
Main Methods:
- All-atom molecular dynamics (MD) simulations were employed.
- Simulations analyzed MKK4 monomer and dimer states, both unphosphorylated and phosphorylated.
Main Results:
- The inactive MKK4 monomer is unstable, while phosphorylation further destabilizes the autoinhibited α-helix.
- MKK4 exists as a stable dimer in its inactive state, which is destabilized upon phosphorylation.
- The common cancer mutation R134W in MKK4 enhances dimer stability.
Conclusions:
- MKK4 likely functions as a dimer in its inactive, autoinhibited state, adding a regulatory layer.
- Phosphorylation and specific mutations influence MKK4 dimer stability and potentially its activity.

