2016
DOI: 10.1002/prot.25207
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Use of restrained molecular dynamics to predict the conformations of phosphorylated receiver domains in two‐component signaling systems

Abstract: Two‐component signaling (TCS) is the primary means by which bacteria, as well as certain plants and fungi, respond to external stimuli. Signal transduction involves stimulus‐dependent autophosphorylation of a sensor histidine kinase and phosphoryl transfer to the receiver domain of a downstream response regulator. Phosphorylation acts as an allosteric switch, inducing structural and functional changes in the pathway's components. Due to their transient nature, phosphorylated receiver domains are challenging to… Show more

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Cited by 12 publications
(15 citation statements)
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References 124 publications
(298 reference statements)
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“…As of November 2020, PFAM 37 Figure 3) in agreement with the general structural framework of REC activation 38,39 . While a full understanding of RssB mechanism will require the structure determination of full-length RssB and RssB~P bound to its various partners, our work allows us to reconsider the role of phosphorylation in the RpoS general response.…”
Section: Discussionsupporting
confidence: 77%
“…As of November 2020, PFAM 37 Figure 3) in agreement with the general structural framework of REC activation 38,39 . While a full understanding of RssB mechanism will require the structure determination of full-length RssB and RssB~P bound to its various partners, our work allows us to reconsider the role of phosphorylation in the RpoS general response.…”
Section: Discussionsupporting
confidence: 77%
“…Accordingly, molecular dynamics (MD) simulations and solution measurements have supplemented the X-ray crystallography of free CheY structures. MD of free CheY examined the coupling between Y106 rotation and T87 movements triggered by hydrogen bond formation (40), showing that the 4-4 loop is an important determinant of allosteric signaling affected by lysine acetylation (41) and extracted common design principles between CheY and other response regulators with correlation analyses (42,43).…”
Section: Introductionmentioning
confidence: 99%
“…After energy minimization, all systems were heated from 0 to 300 K in the NVT ensemble for 100 ps and then changed to constant pressure equilibration for an additional 100 ps, in which weak restraint (2 kcal mol −1 Å −2 ) was imposed upon the backbone atoms of the protein complexes. The final production MD simulations were performed at 300 K using periodic boundary conditions with the particle mesh Ewald (PME), with the restraint decreased from 2 to 0 kcal mol −1 Å −2 . The nonbonded cutoff was set to 10.0 Å and SHAKE was applied for all hydrogen‐containing bonds.…”
Section: Methodsmentioning
confidence: 99%
“…The final production MD simulations were performed at 300 Ku sing periodic boundary conditions with the particle mesh Ewald (PME), with the restraint decreased from 2 to 0kcal mol À1 À2 . [18,19] The nonbonded cutoff was set to 10.0 and SHAKE was applied for all hydrogen-containing bonds.…”
Section: Moleculard Ynamics Simulationmentioning
confidence: 99%