Cargando…

The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION

The mechanism of serine proteases prominently illustrates how charged amino acid residues and proton transfer events facilitate enzyme catalysis. Here we present an ultrahigh resolution (0.93 Å) x-ray structure of a complex formed between trypsin and a canonical inhibitor acting through a substrate-...

Descripción completa

Detalles Bibliográficos
Autores principales: Wahlgren, Weixiao Yuan, Pál, Gábor, Kardos, József, Porrogi, Pálma, Szenthe, Borbála, Patthy, András, Gráf, László, Katona, Gergely
Formato: Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3030363/
https://www.ncbi.nlm.nih.gov/pubmed/21097875
http://dx.doi.org/10.1074/jbc.M110.161604
_version_ 1782197263072755712
author Wahlgren, Weixiao Yuan
Pál, Gábor
Kardos, József
Porrogi, Pálma
Szenthe, Borbála
Patthy, András
Gráf, László
Katona, Gergely
author_facet Wahlgren, Weixiao Yuan
Pál, Gábor
Kardos, József
Porrogi, Pálma
Szenthe, Borbála
Patthy, András
Gráf, László
Katona, Gergely
author_sort Wahlgren, Weixiao Yuan
collection PubMed
description The mechanism of serine proteases prominently illustrates how charged amino acid residues and proton transfer events facilitate enzyme catalysis. Here we present an ultrahigh resolution (0.93 Å) x-ray structure of a complex formed between trypsin and a canonical inhibitor acting through a substrate-like mechanism. The electron density indicates the protonation state of all catalytic residues where the catalytic histidine is, as expected, in its neutral state prior to the acylation step by the catalytic serine. The carboxyl group of the catalytic aspartate displays an asymmetric electron density so that the O(δ2)–C(γ) bond appears to be a double bond, with O(δ2) involved in a hydrogen bond to His-57 and Ser-214. Only when Asp-102 is protonated on O(δ1) atom could a density functional theory simulation reproduce the observed electron density. The presence of a putative hydrogen atom is also confirmed by a residual mF(obs) − DF(calc) density above 2.5 σ next to O(δ1). As a possible functional role for the neutral aspartate in the active site, we propose that in the substrate-bound form, the neutral aspartate residue helps to keep the pK(a) of the histidine sufficiently low, in the active neutral form. When the histidine receives a proton during the catalytic cycle, the aspartate becomes simultaneously negatively charged, providing additional stabilization for the protonated histidine and indirectly to the tetrahedral intermediate. This novel proposal unifies the seemingly conflicting experimental observations, which were previously seen as either supporting the charge relay mechanism or the neutral pK(a) histidine theory.
format Text
id pubmed-3030363
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-30303632012-02-04 The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION Wahlgren, Weixiao Yuan Pál, Gábor Kardos, József Porrogi, Pálma Szenthe, Borbála Patthy, András Gráf, László Katona, Gergely J Biol Chem Enzymology The mechanism of serine proteases prominently illustrates how charged amino acid residues and proton transfer events facilitate enzyme catalysis. Here we present an ultrahigh resolution (0.93 Å) x-ray structure of a complex formed between trypsin and a canonical inhibitor acting through a substrate-like mechanism. The electron density indicates the protonation state of all catalytic residues where the catalytic histidine is, as expected, in its neutral state prior to the acylation step by the catalytic serine. The carboxyl group of the catalytic aspartate displays an asymmetric electron density so that the O(δ2)–C(γ) bond appears to be a double bond, with O(δ2) involved in a hydrogen bond to His-57 and Ser-214. Only when Asp-102 is protonated on O(δ1) atom could a density functional theory simulation reproduce the observed electron density. The presence of a putative hydrogen atom is also confirmed by a residual mF(obs) − DF(calc) density above 2.5 σ next to O(δ1). As a possible functional role for the neutral aspartate in the active site, we propose that in the substrate-bound form, the neutral aspartate residue helps to keep the pK(a) of the histidine sufficiently low, in the active neutral form. When the histidine receives a proton during the catalytic cycle, the aspartate becomes simultaneously negatively charged, providing additional stabilization for the protonated histidine and indirectly to the tetrahedral intermediate. This novel proposal unifies the seemingly conflicting experimental observations, which were previously seen as either supporting the charge relay mechanism or the neutral pK(a) histidine theory. American Society for Biochemistry and Molecular Biology 2011-02-04 2010-11-21 /pmc/articles/PMC3030363/ /pubmed/21097875 http://dx.doi.org/10.1074/jbc.M110.161604 Text en © 2011 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Enzymology
Wahlgren, Weixiao Yuan
Pál, Gábor
Kardos, József
Porrogi, Pálma
Szenthe, Borbála
Patthy, András
Gráf, László
Katona, Gergely
The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION
title The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION
title_full The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION
title_fullStr The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION
title_full_unstemmed The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION
title_short The Catalytic Aspartate Is Protonated in the Michaelis Complex Formed between Trypsin and an in Vitro Evolved Substrate-like Inhibitor: A REFINED MECHANISM OF SERINE PROTEASE ACTION
title_sort catalytic aspartate is protonated in the michaelis complex formed between trypsin and an in vitro evolved substrate-like inhibitor: a refined mechanism of serine protease action
topic Enzymology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3030363/
https://www.ncbi.nlm.nih.gov/pubmed/21097875
http://dx.doi.org/10.1074/jbc.M110.161604
work_keys_str_mv AT wahlgrenweixiaoyuan thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT palgabor thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT kardosjozsef thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT porrogipalma thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT szentheborbala thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT patthyandras thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT graflaszlo thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT katonagergely thecatalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT wahlgrenweixiaoyuan catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT palgabor catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT kardosjozsef catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT porrogipalma catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT szentheborbala catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT patthyandras catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT graflaszlo catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction
AT katonagergely catalyticaspartateisprotonatedinthemichaeliscomplexformedbetweentrypsinandaninvitroevolvedsubstratelikeinhibitorarefinedmechanismofserineproteaseaction