Publication | Closed Access
Two-State Allosteric Behavior in a Single-Domain Signaling Protein
592
Citations
20
References
2001
Year
Biophysical ModelingProtein AssemblyMolecular BiologyCytoskeletonProtein FoldingProtein NtrcMulti-protein AssemblyCell SignalingBiophysicsActive ConformationsProtein ActionsProtein FunctionBiochemical InteractionBiomolecular InteractionStructural BiologyProtein PhosphorylationSignal TransductionNatural SciencesCellular BiochemistrySystems BiologyMedicineTwo-state Allosteric Behavior
Protein actions are usually discussed in terms of static structures, but function requires motion. We find a strong correlation between phosphorylation-driven activation of the signaling protein NtrC and microsecond time-scale backbone dynamics. Using nuclear magnetic resonance relaxation, we characterized the motions of NtrC in three functional states: unphosphorylated (inactive), phosphorylated (active), and a partially active mutant. These dynamics are indicative of exchange between inactive and active conformations. Both states are populated in unphosphorylated NtrC, and phosphorylation shifts the equilibrium toward the active species. These results support a dynamic population shift between two preexisting conformations as the underlying mechanism of activation.
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