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Thermodynamic profile of mutual subunit control in a heteromeric receptor

Cyclic nucleotide-gated (CNG) ion channels of olfactory neurons are tetrameric membrane receptors that are composed of two A2 subunits, one A4 subunit, and one B1b subunit. Each subunit carries a cyclic nucleotide-binding domain in the carboxyl terminus, and the channels are activated by the binding...

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Autores principales: Schirmeyer, Jana, Hummert, Sabine, Eick, Thomas, Schulz, Eckhard, Schwabe, Tina, Ehrlich, Gunter, Kukaj, Taulant, Wiegand, Melanie, Sattler, Christian, Schmauder, Ralf, Zimmer, Thomas, Kosmalla, Nisa, Münch, Jan, Bonus, Michele, Gohlke, Holger, Benndorf, Klaus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8325370/
https://www.ncbi.nlm.nih.gov/pubmed/34301910
http://dx.doi.org/10.1073/pnas.2100469118
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author Schirmeyer, Jana
Hummert, Sabine
Eick, Thomas
Schulz, Eckhard
Schwabe, Tina
Ehrlich, Gunter
Kukaj, Taulant
Wiegand, Melanie
Sattler, Christian
Schmauder, Ralf
Zimmer, Thomas
Kosmalla, Nisa
Münch, Jan
Bonus, Michele
Gohlke, Holger
Benndorf, Klaus
author_facet Schirmeyer, Jana
Hummert, Sabine
Eick, Thomas
Schulz, Eckhard
Schwabe, Tina
Ehrlich, Gunter
Kukaj, Taulant
Wiegand, Melanie
Sattler, Christian
Schmauder, Ralf
Zimmer, Thomas
Kosmalla, Nisa
Münch, Jan
Bonus, Michele
Gohlke, Holger
Benndorf, Klaus
author_sort Schirmeyer, Jana
collection PubMed
description Cyclic nucleotide-gated (CNG) ion channels of olfactory neurons are tetrameric membrane receptors that are composed of two A2 subunits, one A4 subunit, and one B1b subunit. Each subunit carries a cyclic nucleotide-binding domain in the carboxyl terminus, and the channels are activated by the binding of cyclic nucleotides. The mechanism of cooperative channel activation is still elusive. Using a complete set of engineered concatenated olfactory CNG channels, with all combinations of disabled binding sites and fit analyses with systems of allosteric models, the thermodynamics of microscopic cooperativity for ligand binding was subunit- and state-specifically quantified. We show, for the closed channel, that preoccupation of each of the single subunits increases the affinity of each other subunit with a Gibbs free energy (ΔΔG) of ∼−3.5 to ∼−5.5 kJ ⋅ mol(−1), depending on the subunit type, with the only exception that a preoccupied opposite A2 subunit has no effect on the other A2 subunit. Preoccupation of two neighbor subunits of a given subunit causes the maximum affinity increase with ΔΔG of ∼−9.6 to ∼−9.9 kJ ⋅ mol(−1). Surprisingly, triple preoccupation leads to fewer negative ΔΔG values for a given subunit as compared to double preoccupation. Channel opening increases the affinity of all subunits. The equilibrium constants of closed–open isomerizations systematically increase with progressive liganding. This work demonstrates, on the example of the heterotetrameric olfactory CNG channel, a strategy to derive detailed insights into the specific mutual control of the individual subunits in a multisubunit membrane receptor.
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spelling pubmed-83253702021-08-13 Thermodynamic profile of mutual subunit control in a heteromeric receptor Schirmeyer, Jana Hummert, Sabine Eick, Thomas Schulz, Eckhard Schwabe, Tina Ehrlich, Gunter Kukaj, Taulant Wiegand, Melanie Sattler, Christian Schmauder, Ralf Zimmer, Thomas Kosmalla, Nisa Münch, Jan Bonus, Michele Gohlke, Holger Benndorf, Klaus Proc Natl Acad Sci U S A Biological Sciences Cyclic nucleotide-gated (CNG) ion channels of olfactory neurons are tetrameric membrane receptors that are composed of two A2 subunits, one A4 subunit, and one B1b subunit. Each subunit carries a cyclic nucleotide-binding domain in the carboxyl terminus, and the channels are activated by the binding of cyclic nucleotides. The mechanism of cooperative channel activation is still elusive. Using a complete set of engineered concatenated olfactory CNG channels, with all combinations of disabled binding sites and fit analyses with systems of allosteric models, the thermodynamics of microscopic cooperativity for ligand binding was subunit- and state-specifically quantified. We show, for the closed channel, that preoccupation of each of the single subunits increases the affinity of each other subunit with a Gibbs free energy (ΔΔG) of ∼−3.5 to ∼−5.5 kJ ⋅ mol(−1), depending on the subunit type, with the only exception that a preoccupied opposite A2 subunit has no effect on the other A2 subunit. Preoccupation of two neighbor subunits of a given subunit causes the maximum affinity increase with ΔΔG of ∼−9.6 to ∼−9.9 kJ ⋅ mol(−1). Surprisingly, triple preoccupation leads to fewer negative ΔΔG values for a given subunit as compared to double preoccupation. Channel opening increases the affinity of all subunits. The equilibrium constants of closed–open isomerizations systematically increase with progressive liganding. This work demonstrates, on the example of the heterotetrameric olfactory CNG channel, a strategy to derive detailed insights into the specific mutual control of the individual subunits in a multisubunit membrane receptor. National Academy of Sciences 2021-07-27 2021-07-23 /pmc/articles/PMC8325370/ /pubmed/34301910 http://dx.doi.org/10.1073/pnas.2100469118 Text en Copyright © 2021 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Schirmeyer, Jana
Hummert, Sabine
Eick, Thomas
Schulz, Eckhard
Schwabe, Tina
Ehrlich, Gunter
Kukaj, Taulant
Wiegand, Melanie
Sattler, Christian
Schmauder, Ralf
Zimmer, Thomas
Kosmalla, Nisa
Münch, Jan
Bonus, Michele
Gohlke, Holger
Benndorf, Klaus
Thermodynamic profile of mutual subunit control in a heteromeric receptor
title Thermodynamic profile of mutual subunit control in a heteromeric receptor
title_full Thermodynamic profile of mutual subunit control in a heteromeric receptor
title_fullStr Thermodynamic profile of mutual subunit control in a heteromeric receptor
title_full_unstemmed Thermodynamic profile of mutual subunit control in a heteromeric receptor
title_short Thermodynamic profile of mutual subunit control in a heteromeric receptor
title_sort thermodynamic profile of mutual subunit control in a heteromeric receptor
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8325370/
https://www.ncbi.nlm.nih.gov/pubmed/34301910
http://dx.doi.org/10.1073/pnas.2100469118
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