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An experimental strategy to probe Gq contribution to signal transduction in living cells

Heterotrimeric G protein subunits Gαq and Gα11 are inhibited by two cyclic depsipeptides, FR900359 (FR) and YM-254890 (YM), both of which are being used widely to implicate Gq/11 proteins in the regulation of diverse biological processes. An emerging major research question therefore is whether the...

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Autores principales: Patt, Julian, Alenfelder, Judith, Pfeil, Eva Marie, Voss, Jan Hendrik, Merten, Nicole, Eryilmaz, Funda, Heycke, Nina, Rick, Uli, Inoue, Asuka, Kehraus, Stefan, Deupi, Xavier, Müller, Christa E., König, Gabriele M., Crüsemann, Max, Kostenis, Evi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8024710/
https://www.ncbi.nlm.nih.gov/pubmed/33639168
http://dx.doi.org/10.1016/j.jbc.2021.100472
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author Patt, Julian
Alenfelder, Judith
Pfeil, Eva Marie
Voss, Jan Hendrik
Merten, Nicole
Eryilmaz, Funda
Heycke, Nina
Rick, Uli
Inoue, Asuka
Kehraus, Stefan
Deupi, Xavier
Müller, Christa E.
König, Gabriele M.
Crüsemann, Max
Kostenis, Evi
author_facet Patt, Julian
Alenfelder, Judith
Pfeil, Eva Marie
Voss, Jan Hendrik
Merten, Nicole
Eryilmaz, Funda
Heycke, Nina
Rick, Uli
Inoue, Asuka
Kehraus, Stefan
Deupi, Xavier
Müller, Christa E.
König, Gabriele M.
Crüsemann, Max
Kostenis, Evi
author_sort Patt, Julian
collection PubMed
description Heterotrimeric G protein subunits Gαq and Gα11 are inhibited by two cyclic depsipeptides, FR900359 (FR) and YM-254890 (YM), both of which are being used widely to implicate Gq/11 proteins in the regulation of diverse biological processes. An emerging major research question therefore is whether the cellular effects of both inhibitors are on-target, that is, mediated via specific inhibition of Gq/11 proteins, or off-target, that is, the result of nonspecific interactions with other proteins. Here we introduce a versatile experimental strategy to discriminate between these possibilities. We developed a Gαq variant with preserved catalytic activity, but refractory to FR/YM inhibition. A minimum of two amino acid changes were required and sufficient to achieve complete inhibitor resistance. We characterized the novel mutant in HEK293 cells depleted by CRISPR–Cas9 of endogenous Gαq and Gα11 to ensure precise control over the Gα-dependent cellular signaling route. Using a battery of cellular outcomes with known and concealed Gq contribution, we found that FR/YM specifically inhibited cellular signals after Gαq introduction via transient transfection. Conversely, both inhibitors were inert across all assays in cells expressing the drug-resistant variant. These findings eliminate the possibility that inhibition of non-Gq proteins contributes to the cellular effects of the two depsipeptides. We conclude that combined application of FR or YM along with the drug-resistant Gαq variant is a powerful in vitro strategy to discern on-target Gq against off-target non-Gq action. Consequently, it should be of high value for uncovering Gq input to complex biological processes with high accuracy and the requisite specificity.
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spelling pubmed-80247102021-04-12 An experimental strategy to probe Gq contribution to signal transduction in living cells Patt, Julian Alenfelder, Judith Pfeil, Eva Marie Voss, Jan Hendrik Merten, Nicole Eryilmaz, Funda Heycke, Nina Rick, Uli Inoue, Asuka Kehraus, Stefan Deupi, Xavier Müller, Christa E. König, Gabriele M. Crüsemann, Max Kostenis, Evi J Biol Chem Research Article Heterotrimeric G protein subunits Gαq and Gα11 are inhibited by two cyclic depsipeptides, FR900359 (FR) and YM-254890 (YM), both of which are being used widely to implicate Gq/11 proteins in the regulation of diverse biological processes. An emerging major research question therefore is whether the cellular effects of both inhibitors are on-target, that is, mediated via specific inhibition of Gq/11 proteins, or off-target, that is, the result of nonspecific interactions with other proteins. Here we introduce a versatile experimental strategy to discriminate between these possibilities. We developed a Gαq variant with preserved catalytic activity, but refractory to FR/YM inhibition. A minimum of two amino acid changes were required and sufficient to achieve complete inhibitor resistance. We characterized the novel mutant in HEK293 cells depleted by CRISPR–Cas9 of endogenous Gαq and Gα11 to ensure precise control over the Gα-dependent cellular signaling route. Using a battery of cellular outcomes with known and concealed Gq contribution, we found that FR/YM specifically inhibited cellular signals after Gαq introduction via transient transfection. Conversely, both inhibitors were inert across all assays in cells expressing the drug-resistant variant. These findings eliminate the possibility that inhibition of non-Gq proteins contributes to the cellular effects of the two depsipeptides. We conclude that combined application of FR or YM along with the drug-resistant Gαq variant is a powerful in vitro strategy to discern on-target Gq against off-target non-Gq action. Consequently, it should be of high value for uncovering Gq input to complex biological processes with high accuracy and the requisite specificity. American Society for Biochemistry and Molecular Biology 2021-02-25 /pmc/articles/PMC8024710/ /pubmed/33639168 http://dx.doi.org/10.1016/j.jbc.2021.100472 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Patt, Julian
Alenfelder, Judith
Pfeil, Eva Marie
Voss, Jan Hendrik
Merten, Nicole
Eryilmaz, Funda
Heycke, Nina
Rick, Uli
Inoue, Asuka
Kehraus, Stefan
Deupi, Xavier
Müller, Christa E.
König, Gabriele M.
Crüsemann, Max
Kostenis, Evi
An experimental strategy to probe Gq contribution to signal transduction in living cells
title An experimental strategy to probe Gq contribution to signal transduction in living cells
title_full An experimental strategy to probe Gq contribution to signal transduction in living cells
title_fullStr An experimental strategy to probe Gq contribution to signal transduction in living cells
title_full_unstemmed An experimental strategy to probe Gq contribution to signal transduction in living cells
title_short An experimental strategy to probe Gq contribution to signal transduction in living cells
title_sort experimental strategy to probe gq contribution to signal transduction in living cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8024710/
https://www.ncbi.nlm.nih.gov/pubmed/33639168
http://dx.doi.org/10.1016/j.jbc.2021.100472
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