Crystal Structure, SAXS and Kinetic Mechanism of Hyperthermophilic ADP-Dependent Glucokinase from Thermococcus litoralis Reveal a Conserved Mechanism for Catalysis
Author
dc.contributor.author
Rivas Pardo, Jaime Andrés
Author
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Herrera Morande, Alejandra
es_CL
Author
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Castro Fernández, Víctor
es_CL
Author
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Fernández, Francisco J.
es_CL
Author
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Vega, M. Cristina
es_CL
Author
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Guixé Leguía, Victoria Cristina
es_CL
Admission date
dc.date.accessioned
2014-01-28T13:21:31Z
Available date
dc.date.available
2014-01-28T13:21:31Z
Publication date
dc.date.issued
2013-06
Cita de ítem
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PLoS ONE 8(6): e66687
en_US
Identifier
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doi:10.1371/ journal.pone.0066687
Identifier
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https://repositorio.uchile.cl/handle/2250/119714
General note
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Artículo de publicación ISI
en_US
Abstract
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ADP-dependent glucokinases represent a unique family of kinases that belong to the ribokinase superfamily, being present
mainly in hyperthermophilic archaea. For these enzymes there is no agreement about the magnitude of the structural
transitions associated with ligand binding and whether they are meaningful to the function of the enzyme. We used the
ADP-dependent glucokinase from Termococcus litoralis as a model to investigate the conformational changes observed in Xray
crystallographic structures upon substrate binding and to compare them with those determined in solution in order to
understand their interplay with the glucokinase function. Initial velocity studies indicate that catalysis follows a sequential
ordered mechanism that correlates with the structural transitions experienced by the enzyme in solution and in the crystal
state. The combined data allowed us to resolve the open-closed conformational transition that accounts for the complete
reaction cycle and to identify the corresponding clusters of aminoacids residues responsible for it. These results provide
molecular bases for a general mechanism conserved across the ADP-dependent kinase family.
Crystal Structure, SAXS and Kinetic Mechanism of Hyperthermophilic ADP-Dependent Glucokinase from Thermococcus litoralis Reveal a Conserved Mechanism for Catalysis