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Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms

OBJECTIVES: G protein-coupled receptors (GPCRs) act as transmembrane molecular sensors of neurotransmitters, hormones, nutrients, and metabolites. Because unmyelinated vagal afferents richly innervate the gastrointestinal mucosa, gut-derived molecules may directly modulate the activity of vagal affe...

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Autores principales: Egerod, Kristoffer L., Petersen, Natalia, Timshel, Pascal N., Rekling, Jens C., Wang, Yibing, Liu, Qinghua, Schwartz, Thue W., Gautron, Laurent
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6001940/
https://www.ncbi.nlm.nih.gov/pubmed/29673577
http://dx.doi.org/10.1016/j.molmet.2018.03.016
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author Egerod, Kristoffer L.
Petersen, Natalia
Timshel, Pascal N.
Rekling, Jens C.
Wang, Yibing
Liu, Qinghua
Schwartz, Thue W.
Gautron, Laurent
author_facet Egerod, Kristoffer L.
Petersen, Natalia
Timshel, Pascal N.
Rekling, Jens C.
Wang, Yibing
Liu, Qinghua
Schwartz, Thue W.
Gautron, Laurent
author_sort Egerod, Kristoffer L.
collection PubMed
description OBJECTIVES: G protein-coupled receptors (GPCRs) act as transmembrane molecular sensors of neurotransmitters, hormones, nutrients, and metabolites. Because unmyelinated vagal afferents richly innervate the gastrointestinal mucosa, gut-derived molecules may directly modulate the activity of vagal afferents through GPCRs. However, the types of GPCRs expressed in vagal afferents are largely unknown. Here, we determined the expression profile of all GPCRs expressed in vagal afferents of the mouse, with a special emphasis on those innervating the gastrointestinal tract. METHODS: Using a combination of high-throughput quantitative PCR, RNA sequencing, and in situ hybridization, we systematically quantified GPCRs expressed in vagal unmyelinated Na(v)1.8-expressing afferents. RESULTS: GPCRs for gut hormones that were the most enriched in Na(v)1.8-expressing vagal unmyelinated afferents included NTSR1, NPY2R, CCK1R, and to a lesser extent, GLP1R, but not GHSR and GIPR. Interestingly, both GLP1R and NPY2R were coexpressed with CCK1R. In contrast, NTSR1 was coexpressed with GPR65, a marker preferentially enriched in intestinal mucosal afferents. Only few microbiome-derived metabolite sensors such as GPR35 and, to a lesser extent, GPR119 and CaSR were identified in the Na(v)1.8-expressing vagal afferents. GPCRs involved in lipid sensing and inflammation (e.g. CB1R, CYSLTR2, PTGER4), and neurotransmitters signaling (CHRM4, DRD2, CRHR2) were also highly enriched in Na(v)1.8-expressing neurons. Finally, we identified 21 orphan GPCRs with unknown functions in vagal afferents. CONCLUSION: Overall, this study provides a comprehensive description of GPCR-dependent sensing mechanisms in vagal afferents, including novel coexpression patterns, and conceivably coaction of key receptors for gut-derived molecules involved in gut-brain communication.
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spelling pubmed-60019402018-06-15 Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms Egerod, Kristoffer L. Petersen, Natalia Timshel, Pascal N. Rekling, Jens C. Wang, Yibing Liu, Qinghua Schwartz, Thue W. Gautron, Laurent Mol Metab Original Article OBJECTIVES: G protein-coupled receptors (GPCRs) act as transmembrane molecular sensors of neurotransmitters, hormones, nutrients, and metabolites. Because unmyelinated vagal afferents richly innervate the gastrointestinal mucosa, gut-derived molecules may directly modulate the activity of vagal afferents through GPCRs. However, the types of GPCRs expressed in vagal afferents are largely unknown. Here, we determined the expression profile of all GPCRs expressed in vagal afferents of the mouse, with a special emphasis on those innervating the gastrointestinal tract. METHODS: Using a combination of high-throughput quantitative PCR, RNA sequencing, and in situ hybridization, we systematically quantified GPCRs expressed in vagal unmyelinated Na(v)1.8-expressing afferents. RESULTS: GPCRs for gut hormones that were the most enriched in Na(v)1.8-expressing vagal unmyelinated afferents included NTSR1, NPY2R, CCK1R, and to a lesser extent, GLP1R, but not GHSR and GIPR. Interestingly, both GLP1R and NPY2R were coexpressed with CCK1R. In contrast, NTSR1 was coexpressed with GPR65, a marker preferentially enriched in intestinal mucosal afferents. Only few microbiome-derived metabolite sensors such as GPR35 and, to a lesser extent, GPR119 and CaSR were identified in the Na(v)1.8-expressing vagal afferents. GPCRs involved in lipid sensing and inflammation (e.g. CB1R, CYSLTR2, PTGER4), and neurotransmitters signaling (CHRM4, DRD2, CRHR2) were also highly enriched in Na(v)1.8-expressing neurons. Finally, we identified 21 orphan GPCRs with unknown functions in vagal afferents. CONCLUSION: Overall, this study provides a comprehensive description of GPCR-dependent sensing mechanisms in vagal afferents, including novel coexpression patterns, and conceivably coaction of key receptors for gut-derived molecules involved in gut-brain communication. Elsevier 2018-04-03 /pmc/articles/PMC6001940/ /pubmed/29673577 http://dx.doi.org/10.1016/j.molmet.2018.03.016 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Egerod, Kristoffer L.
Petersen, Natalia
Timshel, Pascal N.
Rekling, Jens C.
Wang, Yibing
Liu, Qinghua
Schwartz, Thue W.
Gautron, Laurent
Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms
title Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms
title_full Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms
title_fullStr Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms
title_full_unstemmed Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms
title_short Profiling of G protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms
title_sort profiling of g protein-coupled receptors in vagal afferents reveals novel gut-to-brain sensing mechanisms
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6001940/
https://www.ncbi.nlm.nih.gov/pubmed/29673577
http://dx.doi.org/10.1016/j.molmet.2018.03.016
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