Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.

G Protein Coupled Receptors (GPCR) can form dimers or higher ordered oligomers, the process of which can remarkably influence the physiological and pharmacological function of these receptors. Quantitative Bioluminescence Resonance Energy Transfer (qBRET) measurements are the gold standards to prove...

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Main Authors: Bence Szalai, Péter Hoffmann, Susanne Prokop, László Erdélyi, Péter Várnai, László Hunyady
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4201472?pdf=render
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spelling doaj-eadc547274c541718abdd03ebbfe992e2020-11-25T02:04:38ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-01910e10950310.1371/journal.pone.0109503Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.Bence SzalaiPéter HoffmannSusanne ProkopLászló ErdélyiPéter VárnaiLászló HunyadyG Protein Coupled Receptors (GPCR) can form dimers or higher ordered oligomers, the process of which can remarkably influence the physiological and pharmacological function of these receptors. Quantitative Bioluminescence Resonance Energy Transfer (qBRET) measurements are the gold standards to prove the direct physical interaction between the protomers of presumed GPCR dimers. For the correct interpretation of these experiments, the expression of the energy donor Renilla luciferase labeled receptor has to be maintained constant, which is hard to achieve in expression systems. To analyze the effects of non-constant donor expression on qBRET curves, we performed Monte Carlo simulations. Our results show that the decrease of donor expression can lead to saturation qBRET curves even if the interaction between donor and acceptor labeled receptors is non-specific leading to false interpretation of the dimerization state. We suggest here a new approach to the analysis of qBRET data, when the BRET ratio is plotted as a function of the acceptor labeled receptor expression at various donor receptor expression levels. With this method, we were able to distinguish between dimerization and non-specific interaction when the results of classical qBRET experiments were ambiguous. The simulation results were confirmed experimentally using rapamycin inducible heterodimerization system. We used this new method to investigate the dimerization of various GPCRs, and our data have confirmed the homodimerization of V2 vasopressin and CaSR calcium sensing receptors, whereas our data argue against the heterodimerization of these receptors with other studied GPCRs, including type I and II angiotensin, β2 adrenergic and CB1 cannabinoid receptors.http://europepmc.org/articles/PMC4201472?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Bence Szalai
Péter Hoffmann
Susanne Prokop
László Erdélyi
Péter Várnai
László Hunyady
spellingShingle Bence Szalai
Péter Hoffmann
Susanne Prokop
László Erdélyi
Péter Várnai
László Hunyady
Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.
PLoS ONE
author_facet Bence Szalai
Péter Hoffmann
Susanne Prokop
László Erdélyi
Péter Várnai
László Hunyady
author_sort Bence Szalai
title Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.
title_short Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.
title_full Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.
title_fullStr Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.
title_full_unstemmed Improved methodical approach for quantitative BRET analysis of G Protein Coupled Receptor dimerization.
title_sort improved methodical approach for quantitative bret analysis of g protein coupled receptor dimerization.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description G Protein Coupled Receptors (GPCR) can form dimers or higher ordered oligomers, the process of which can remarkably influence the physiological and pharmacological function of these receptors. Quantitative Bioluminescence Resonance Energy Transfer (qBRET) measurements are the gold standards to prove the direct physical interaction between the protomers of presumed GPCR dimers. For the correct interpretation of these experiments, the expression of the energy donor Renilla luciferase labeled receptor has to be maintained constant, which is hard to achieve in expression systems. To analyze the effects of non-constant donor expression on qBRET curves, we performed Monte Carlo simulations. Our results show that the decrease of donor expression can lead to saturation qBRET curves even if the interaction between donor and acceptor labeled receptors is non-specific leading to false interpretation of the dimerization state. We suggest here a new approach to the analysis of qBRET data, when the BRET ratio is plotted as a function of the acceptor labeled receptor expression at various donor receptor expression levels. With this method, we were able to distinguish between dimerization and non-specific interaction when the results of classical qBRET experiments were ambiguous. The simulation results were confirmed experimentally using rapamycin inducible heterodimerization system. We used this new method to investigate the dimerization of various GPCRs, and our data have confirmed the homodimerization of V2 vasopressin and CaSR calcium sensing receptors, whereas our data argue against the heterodimerization of these receptors with other studied GPCRs, including type I and II angiotensin, β2 adrenergic and CB1 cannabinoid receptors.
url http://europepmc.org/articles/PMC4201472?pdf=render
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