Cargando…

A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I

Guanosine triphosphate (GTP) cyclohydrolase I (GCH1) catalyzes the conversion of GTP to dihydroneopterin triphosphate (H2NTP), the initiating step in the biosynthesis of tetrahydrobiopterin (BH4). Besides other roles, BH4 functions as cofactor in neurotransmitter biosynthesis. The BH4 biosynthetic p...

Descripción completa

Detalles Bibliográficos
Autores principales: Ebenhoch, Rebecca, Prinz, Simone, Kaltwasser, Susann, Mills, Deryck J., Meinecke, Robert, Rübbelke, Martin, Reinert, Dirk, Bauer, Margit, Weixler, Lisa, Zeeb, Markus, Vonck, Janet, Nar, Herbert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7750480/
https://www.ncbi.nlm.nih.gov/pubmed/33229582
http://dx.doi.org/10.1073/pnas.2013473117
_version_ 1783625495840030720
author Ebenhoch, Rebecca
Prinz, Simone
Kaltwasser, Susann
Mills, Deryck J.
Meinecke, Robert
Rübbelke, Martin
Reinert, Dirk
Bauer, Margit
Weixler, Lisa
Zeeb, Markus
Vonck, Janet
Nar, Herbert
author_facet Ebenhoch, Rebecca
Prinz, Simone
Kaltwasser, Susann
Mills, Deryck J.
Meinecke, Robert
Rübbelke, Martin
Reinert, Dirk
Bauer, Margit
Weixler, Lisa
Zeeb, Markus
Vonck, Janet
Nar, Herbert
author_sort Ebenhoch, Rebecca
collection PubMed
description Guanosine triphosphate (GTP) cyclohydrolase I (GCH1) catalyzes the conversion of GTP to dihydroneopterin triphosphate (H2NTP), the initiating step in the biosynthesis of tetrahydrobiopterin (BH4). Besides other roles, BH4 functions as cofactor in neurotransmitter biosynthesis. The BH4 biosynthetic pathway and GCH1 have been identified as promising targets to treat pain disorders in patients. The function of mammalian GCH1s is regulated by a metabolic sensing mechanism involving a regulator protein, GCH1 feedback regulatory protein (GFRP). GFRP binds to GCH1 to form inhibited or activated complexes dependent on availability of cofactor ligands, BH4 and phenylalanine, respectively. We determined high-resolution structures of human GCH1−GFRP complexes by cryoelectron microscopy (cryo-EM). Cryo-EM revealed structural flexibility of specific and relevant surface lining loops, which previously was not detected by X-ray crystallography due to crystal packing effects. Further, we studied allosteric regulation of isolated GCH1 by X-ray crystallography. Using the combined structural information, we are able to obtain a comprehensive picture of the mechanism of allosteric regulation. Local rearrangements in the allosteric pocket upon BH4 binding result in drastic changes in the quaternary structure of the enzyme, leading to a more compact, tense form of the inhibited protein, and translocate to the active site, leading to an open, more flexible structure of its surroundings. Inhibition of the enzymatic activity is not a result of hindrance of substrate binding, but rather a consequence of accelerated substrate binding kinetics as shown by saturation transfer difference NMR (STD-NMR) and site-directed mutagenesis. We propose a dissociation rate controlled mechanism of allosteric, noncompetitive inhibition.
format Online
Article
Text
id pubmed-7750480
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher National Academy of Sciences
record_format MEDLINE/PubMed
spelling pubmed-77504802020-12-24 A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I Ebenhoch, Rebecca Prinz, Simone Kaltwasser, Susann Mills, Deryck J. Meinecke, Robert Rübbelke, Martin Reinert, Dirk Bauer, Margit Weixler, Lisa Zeeb, Markus Vonck, Janet Nar, Herbert Proc Natl Acad Sci U S A Biological Sciences Guanosine triphosphate (GTP) cyclohydrolase I (GCH1) catalyzes the conversion of GTP to dihydroneopterin triphosphate (H2NTP), the initiating step in the biosynthesis of tetrahydrobiopterin (BH4). Besides other roles, BH4 functions as cofactor in neurotransmitter biosynthesis. The BH4 biosynthetic pathway and GCH1 have been identified as promising targets to treat pain disorders in patients. The function of mammalian GCH1s is regulated by a metabolic sensing mechanism involving a regulator protein, GCH1 feedback regulatory protein (GFRP). GFRP binds to GCH1 to form inhibited or activated complexes dependent on availability of cofactor ligands, BH4 and phenylalanine, respectively. We determined high-resolution structures of human GCH1−GFRP complexes by cryoelectron microscopy (cryo-EM). Cryo-EM revealed structural flexibility of specific and relevant surface lining loops, which previously was not detected by X-ray crystallography due to crystal packing effects. Further, we studied allosteric regulation of isolated GCH1 by X-ray crystallography. Using the combined structural information, we are able to obtain a comprehensive picture of the mechanism of allosteric regulation. Local rearrangements in the allosteric pocket upon BH4 binding result in drastic changes in the quaternary structure of the enzyme, leading to a more compact, tense form of the inhibited protein, and translocate to the active site, leading to an open, more flexible structure of its surroundings. Inhibition of the enzymatic activity is not a result of hindrance of substrate binding, but rather a consequence of accelerated substrate binding kinetics as shown by saturation transfer difference NMR (STD-NMR) and site-directed mutagenesis. We propose a dissociation rate controlled mechanism of allosteric, noncompetitive inhibition. National Academy of Sciences 2020-12-15 2020-11-23 /pmc/articles/PMC7750480/ /pubmed/33229582 http://dx.doi.org/10.1073/pnas.2013473117 Text en Copyright © 2020 the Author(s). Published by PNAS. http://creativecommons.org/licenses/by/4.0/ https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Ebenhoch, Rebecca
Prinz, Simone
Kaltwasser, Susann
Mills, Deryck J.
Meinecke, Robert
Rübbelke, Martin
Reinert, Dirk
Bauer, Margit
Weixler, Lisa
Zeeb, Markus
Vonck, Janet
Nar, Herbert
A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I
title A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I
title_full A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I
title_fullStr A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I
title_full_unstemmed A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I
title_short A hybrid approach reveals the allosteric regulation of GTP cyclohydrolase I
title_sort hybrid approach reveals the allosteric regulation of gtp cyclohydrolase i
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7750480/
https://www.ncbi.nlm.nih.gov/pubmed/33229582
http://dx.doi.org/10.1073/pnas.2013473117
work_keys_str_mv AT ebenhochrebecca ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT prinzsimone ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT kaltwassersusann ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT millsderyckj ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT meineckerobert ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT rubbelkemartin ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT reinertdirk ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT bauermargit ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT weixlerlisa ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT zeebmarkus ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT vonckjanet ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT narherbert ahybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT ebenhochrebecca hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT prinzsimone hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT kaltwassersusann hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT millsderyckj hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT meineckerobert hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT rubbelkemartin hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT reinertdirk hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT bauermargit hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT weixlerlisa hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT zeebmarkus hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT vonckjanet hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei
AT narherbert hybridapproachrevealstheallostericregulationofgtpcyclohydrolasei