Cargando…

Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions

Homo‐oligomeric ligand‐activated proteins are ubiquitous in biology. The functions of such molecules are commonly regulated by allosteric coupling between ligand‐binding sites. Understanding the basis for this regulation requires both quantifying the free energy ΔG transduced between sites, and the...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Weicheng, Norris, Andrew S., Lichtenthal, Katie, Kelly, Skyler, Ihms, Elihu C., Gollnick, Paul, Wysocki, Vicki H., Foster, Mark P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9514064/
https://www.ncbi.nlm.nih.gov/pubmed/36173171
http://dx.doi.org/10.1002/pro.4424
_version_ 1784798197552513024
author Li, Weicheng
Norris, Andrew S.
Lichtenthal, Katie
Kelly, Skyler
Ihms, Elihu C.
Gollnick, Paul
Wysocki, Vicki H.
Foster, Mark P.
author_facet Li, Weicheng
Norris, Andrew S.
Lichtenthal, Katie
Kelly, Skyler
Ihms, Elihu C.
Gollnick, Paul
Wysocki, Vicki H.
Foster, Mark P.
author_sort Li, Weicheng
collection PubMed
description Homo‐oligomeric ligand‐activated proteins are ubiquitous in biology. The functions of such molecules are commonly regulated by allosteric coupling between ligand‐binding sites. Understanding the basis for this regulation requires both quantifying the free energy ΔG transduced between sites, and the structural basis by which it is transduced. We consider allostery in three variants of the model ring‐shaped homo‐oligomeric trp RNA‐binding attenuation protein (TRAP). First, we developed a nearest‐neighbor statistical thermodynamic binding model comprising microscopic free energies for ligand binding to isolated sites ΔG (0), and for coupling between adjacent sites, ΔG ( α ). Using the resulting partition function (PF) we explored the effects of these parameters on simulated population distributions for the 2( N ) possible liganded states. We then experimentally monitored ligand‐dependent population shifts using conventional spectroscopic and calorimetric methods and using native mass spectrometry (MS). By resolving species with differing numbers of bound ligands by their mass, native MS revealed striking differences in their ligand‐dependent population shifts. Fitting the populations to a binding polynomial derived from the PF yielded coupling free energy terms corresponding to orders of magnitude differences in cooperativity. Uniquely, this approach predicts which of the possible 2( N ) liganded states are populated at different ligand concentrations, providing necessary insights into regulation. The combination of statistical thermodynamic modeling with native MS may provide the thermodynamic foundation for a meaningful understanding of the structure–thermodynamic linkage that drives cooperativity.
format Online
Article
Text
id pubmed-9514064
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley & Sons, Inc.
record_format MEDLINE/PubMed
spelling pubmed-95140642022-09-30 Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions Li, Weicheng Norris, Andrew S. Lichtenthal, Katie Kelly, Skyler Ihms, Elihu C. Gollnick, Paul Wysocki, Vicki H. Foster, Mark P. Protein Sci Full‐length Papers Homo‐oligomeric ligand‐activated proteins are ubiquitous in biology. The functions of such molecules are commonly regulated by allosteric coupling between ligand‐binding sites. Understanding the basis for this regulation requires both quantifying the free energy ΔG transduced between sites, and the structural basis by which it is transduced. We consider allostery in three variants of the model ring‐shaped homo‐oligomeric trp RNA‐binding attenuation protein (TRAP). First, we developed a nearest‐neighbor statistical thermodynamic binding model comprising microscopic free energies for ligand binding to isolated sites ΔG (0), and for coupling between adjacent sites, ΔG ( α ). Using the resulting partition function (PF) we explored the effects of these parameters on simulated population distributions for the 2( N ) possible liganded states. We then experimentally monitored ligand‐dependent population shifts using conventional spectroscopic and calorimetric methods and using native mass spectrometry (MS). By resolving species with differing numbers of bound ligands by their mass, native MS revealed striking differences in their ligand‐dependent population shifts. Fitting the populations to a binding polynomial derived from the PF yielded coupling free energy terms corresponding to orders of magnitude differences in cooperativity. Uniquely, this approach predicts which of the possible 2( N ) liganded states are populated at different ligand concentrations, providing necessary insights into regulation. The combination of statistical thermodynamic modeling with native MS may provide the thermodynamic foundation for a meaningful understanding of the structure–thermodynamic linkage that drives cooperativity. John Wiley & Sons, Inc. 2022-09-27 2022-10 /pmc/articles/PMC9514064/ /pubmed/36173171 http://dx.doi.org/10.1002/pro.4424 Text en © 2022 The Authors. Protein Science published by Wiley Periodicals LLC on behalf of The Protein Society. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Full‐length Papers
Li, Weicheng
Norris, Andrew S.
Lichtenthal, Katie
Kelly, Skyler
Ihms, Elihu C.
Gollnick, Paul
Wysocki, Vicki H.
Foster, Mark P.
Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions
title Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions
title_full Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions
title_fullStr Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions
title_full_unstemmed Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions
title_short Thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions
title_sort thermodynamic coupling between neighboring binding sites in homo‐oligomeric ligand sensing proteins from mass resolved ligand‐dependent population distributions
topic Full‐length Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9514064/
https://www.ncbi.nlm.nih.gov/pubmed/36173171
http://dx.doi.org/10.1002/pro.4424
work_keys_str_mv AT liweicheng thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions
AT norrisandrews thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions
AT lichtenthalkatie thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions
AT kellyskyler thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions
AT ihmselihuc thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions
AT gollnickpaul thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions
AT wysockivickih thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions
AT fostermarkp thermodynamiccouplingbetweenneighboringbindingsitesinhomooligomericligandsensingproteinsfrommassresolvedliganddependentpopulationdistributions