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Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation

The Melanocortin-4 Receptor (MC4R) plays a pivotal role in energy homeostasis. We used human MC4R mutations associated with an increased or decreased risk of obesity to dissect mechanisms that regulate MC4R function. Most obesity-associated mutations impair trafficking to the plasma membrane (PM), w...

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Autores principales: Brouwers, Bas, de Oliveira, Edson Mendes, Marti-Solano, Maria, Monteiro, Fabiola B.F., Laurin, Suli-Anne, Keogh, Julia M., Henning, Elana, Bounds, Rebecca, Daly, Carole A., Houston, Shane, Ayinampudi, Vikram, Wasiluk, Natalia, Clarke, David, Plouffe, Bianca, Bouvier, Michel, Babu, M. Madan, Farooqi, I. Sadaf, Mokrosiński, Jacek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7994375/
https://www.ncbi.nlm.nih.gov/pubmed/33761344
http://dx.doi.org/10.1016/j.celrep.2021.108862
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author Brouwers, Bas
de Oliveira, Edson Mendes
Marti-Solano, Maria
Monteiro, Fabiola B.F.
Laurin, Suli-Anne
Keogh, Julia M.
Henning, Elana
Bounds, Rebecca
Daly, Carole A.
Houston, Shane
Ayinampudi, Vikram
Wasiluk, Natalia
Clarke, David
Plouffe, Bianca
Bouvier, Michel
Babu, M. Madan
Farooqi, I. Sadaf
Mokrosiński, Jacek
author_facet Brouwers, Bas
de Oliveira, Edson Mendes
Marti-Solano, Maria
Monteiro, Fabiola B.F.
Laurin, Suli-Anne
Keogh, Julia M.
Henning, Elana
Bounds, Rebecca
Daly, Carole A.
Houston, Shane
Ayinampudi, Vikram
Wasiluk, Natalia
Clarke, David
Plouffe, Bianca
Bouvier, Michel
Babu, M. Madan
Farooqi, I. Sadaf
Mokrosiński, Jacek
author_sort Brouwers, Bas
collection PubMed
description The Melanocortin-4 Receptor (MC4R) plays a pivotal role in energy homeostasis. We used human MC4R mutations associated with an increased or decreased risk of obesity to dissect mechanisms that regulate MC4R function. Most obesity-associated mutations impair trafficking to the plasma membrane (PM), whereas obesity-protecting mutations either accelerate recycling to the PM or decrease internalization, resulting in enhanced signaling. MC4R mutations that do not affect canonical Gα(s) protein-mediated signaling, previously considered to be non-pathogenic, nonetheless disrupt agonist-induced internalization, β-arrestin recruitment, and/or coupling to Gα(s), establishing their causal role in severe obesity. Structural mapping reveals ligand-accessible sites by which MC4R couples to effectors and residues involved in the homodimerization of MC4R, which is disrupted by multiple obesity-associated mutations. Human genetic studies reveal that endocytosis, intracellular trafficking, and homodimerization regulate MC4R function to a level that is physiologically relevant, supporting the development of chaperones, agonists, and allosteric modulators of MC4R for weight loss therapy.
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spelling pubmed-79943752021-03-29 Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation Brouwers, Bas de Oliveira, Edson Mendes Marti-Solano, Maria Monteiro, Fabiola B.F. Laurin, Suli-Anne Keogh, Julia M. Henning, Elana Bounds, Rebecca Daly, Carole A. Houston, Shane Ayinampudi, Vikram Wasiluk, Natalia Clarke, David Plouffe, Bianca Bouvier, Michel Babu, M. Madan Farooqi, I. Sadaf Mokrosiński, Jacek Cell Rep Article The Melanocortin-4 Receptor (MC4R) plays a pivotal role in energy homeostasis. We used human MC4R mutations associated with an increased or decreased risk of obesity to dissect mechanisms that regulate MC4R function. Most obesity-associated mutations impair trafficking to the plasma membrane (PM), whereas obesity-protecting mutations either accelerate recycling to the PM or decrease internalization, resulting in enhanced signaling. MC4R mutations that do not affect canonical Gα(s) protein-mediated signaling, previously considered to be non-pathogenic, nonetheless disrupt agonist-induced internalization, β-arrestin recruitment, and/or coupling to Gα(s), establishing their causal role in severe obesity. Structural mapping reveals ligand-accessible sites by which MC4R couples to effectors and residues involved in the homodimerization of MC4R, which is disrupted by multiple obesity-associated mutations. Human genetic studies reveal that endocytosis, intracellular trafficking, and homodimerization regulate MC4R function to a level that is physiologically relevant, supporting the development of chaperones, agonists, and allosteric modulators of MC4R for weight loss therapy. Cell Press 2021-03-23 /pmc/articles/PMC7994375/ /pubmed/33761344 http://dx.doi.org/10.1016/j.celrep.2021.108862 Text en © 2021 The Authors http://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 Article
Brouwers, Bas
de Oliveira, Edson Mendes
Marti-Solano, Maria
Monteiro, Fabiola B.F.
Laurin, Suli-Anne
Keogh, Julia M.
Henning, Elana
Bounds, Rebecca
Daly, Carole A.
Houston, Shane
Ayinampudi, Vikram
Wasiluk, Natalia
Clarke, David
Plouffe, Bianca
Bouvier, Michel
Babu, M. Madan
Farooqi, I. Sadaf
Mokrosiński, Jacek
Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation
title Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation
title_full Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation
title_fullStr Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation
title_full_unstemmed Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation
title_short Human MC4R variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation
title_sort human mc4r variants affect endocytosis, trafficking and dimerization revealing multiple cellular mechanisms involved in weight regulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7994375/
https://www.ncbi.nlm.nih.gov/pubmed/33761344
http://dx.doi.org/10.1016/j.celrep.2021.108862
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