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Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity

AIMS/HYPOTHESIS: During the onset of type 2 diabetes, excessive dietary intake of saturated NEFA and fructose lead to impaired insulin production and secretion by insulin-producing pancreatic beta cells. The majority of data on the deleterious effects of lipids on functional beta cell mass were obta...

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Autores principales: Oshima, Masaya, Pechberty, Séverine, Bellini, Lara, Göpel, Sven O., Campana, Mélanie, Rouch, Claude, Dairou, Julien, Cosentino, Cristina, Fantuzzi, Federica, Toivonen, Sanna, Marchetti, Piero, Magnan, Christophe, Cnop, Miriam, Le Stunff, Hervé, Scharfmann, Raphaël
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6946759/
https://www.ncbi.nlm.nih.gov/pubmed/31796987
http://dx.doi.org/10.1007/s00125-019-05046-x
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author Oshima, Masaya
Pechberty, Séverine
Bellini, Lara
Göpel, Sven O.
Campana, Mélanie
Rouch, Claude
Dairou, Julien
Cosentino, Cristina
Fantuzzi, Federica
Toivonen, Sanna
Marchetti, Piero
Magnan, Christophe
Cnop, Miriam
Le Stunff, Hervé
Scharfmann, Raphaël
author_facet Oshima, Masaya
Pechberty, Séverine
Bellini, Lara
Göpel, Sven O.
Campana, Mélanie
Rouch, Claude
Dairou, Julien
Cosentino, Cristina
Fantuzzi, Federica
Toivonen, Sanna
Marchetti, Piero
Magnan, Christophe
Cnop, Miriam
Le Stunff, Hervé
Scharfmann, Raphaël
author_sort Oshima, Masaya
collection PubMed
description AIMS/HYPOTHESIS: During the onset of type 2 diabetes, excessive dietary intake of saturated NEFA and fructose lead to impaired insulin production and secretion by insulin-producing pancreatic beta cells. The majority of data on the deleterious effects of lipids on functional beta cell mass were obtained either in vivo in rodent models or in vitro using rodent islets and beta cell lines. Translating data from rodent to human beta cells remains challenging. Here, we used the human beta cell line EndoC-βH1 and analysed its sensitivity to a lipotoxic and glucolipotoxic (high palmitate with or without high glucose) insult, as a way to model human beta cells in a type 2 diabetes environment. METHODS: EndoC-βH1 cells were exposed to palmitate after knockdown of genes related to saturated NEFA metabolism. We analysed whether and how palmitate induces apoptosis, stress and inflammation and modulates beta cell identity. RESULTS: EndoC-βH1 cells were insensitive to the deleterious effects of saturated NEFA (palmitate and stearate) unless stearoyl CoA desaturase (SCD) was silenced. SCD was abundantly expressed in EndoC-βH1 cells, as well as in human islets and human induced pluripotent stem cell-derived beta cells. SCD silencing induced markers of inflammation and endoplasmic reticulum stress and also IAPP mRNA. Treatment with the SCD products oleate or palmitoleate reversed inflammation and endoplasmic reticulum stress. Upon SCD knockdown, palmitate induced expression of dedifferentiation markers such as SOX9, MYC and HES1. Interestingly, SCD knockdown by itself disrupted beta cell identity with a decrease in mature beta cell markers INS, MAFA and SLC30A8 and decreased insulin content and glucose-stimulated insulin secretion. CONCLUSIONS/INTERPRETATION: The present study delineates an important role for SCD in the protection against lipotoxicity and in the maintenance of human beta cell identity. DATA AVAILABILITY: Microarray data and all experimental details that support the findings of this study have been deposited in in the GEO database with the GSE130208 accession code. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1007/s00125-019-05046-x) contains peer-reviewed but unedited supplementary material, which is available to authorised users.
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spelling pubmed-69467592020-01-21 Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity Oshima, Masaya Pechberty, Séverine Bellini, Lara Göpel, Sven O. Campana, Mélanie Rouch, Claude Dairou, Julien Cosentino, Cristina Fantuzzi, Federica Toivonen, Sanna Marchetti, Piero Magnan, Christophe Cnop, Miriam Le Stunff, Hervé Scharfmann, Raphaël Diabetologia Article AIMS/HYPOTHESIS: During the onset of type 2 diabetes, excessive dietary intake of saturated NEFA and fructose lead to impaired insulin production and secretion by insulin-producing pancreatic beta cells. The majority of data on the deleterious effects of lipids on functional beta cell mass were obtained either in vivo in rodent models or in vitro using rodent islets and beta cell lines. Translating data from rodent to human beta cells remains challenging. Here, we used the human beta cell line EndoC-βH1 and analysed its sensitivity to a lipotoxic and glucolipotoxic (high palmitate with or without high glucose) insult, as a way to model human beta cells in a type 2 diabetes environment. METHODS: EndoC-βH1 cells were exposed to palmitate after knockdown of genes related to saturated NEFA metabolism. We analysed whether and how palmitate induces apoptosis, stress and inflammation and modulates beta cell identity. RESULTS: EndoC-βH1 cells were insensitive to the deleterious effects of saturated NEFA (palmitate and stearate) unless stearoyl CoA desaturase (SCD) was silenced. SCD was abundantly expressed in EndoC-βH1 cells, as well as in human islets and human induced pluripotent stem cell-derived beta cells. SCD silencing induced markers of inflammation and endoplasmic reticulum stress and also IAPP mRNA. Treatment with the SCD products oleate or palmitoleate reversed inflammation and endoplasmic reticulum stress. Upon SCD knockdown, palmitate induced expression of dedifferentiation markers such as SOX9, MYC and HES1. Interestingly, SCD knockdown by itself disrupted beta cell identity with a decrease in mature beta cell markers INS, MAFA and SLC30A8 and decreased insulin content and glucose-stimulated insulin secretion. CONCLUSIONS/INTERPRETATION: The present study delineates an important role for SCD in the protection against lipotoxicity and in the maintenance of human beta cell identity. DATA AVAILABILITY: Microarray data and all experimental details that support the findings of this study have been deposited in in the GEO database with the GSE130208 accession code. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1007/s00125-019-05046-x) contains peer-reviewed but unedited supplementary material, which is available to authorised users. Springer Berlin Heidelberg 2019-12-03 2020 /pmc/articles/PMC6946759/ /pubmed/31796987 http://dx.doi.org/10.1007/s00125-019-05046-x Text en © The Author(s) 2019 Open Access This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Article
Oshima, Masaya
Pechberty, Séverine
Bellini, Lara
Göpel, Sven O.
Campana, Mélanie
Rouch, Claude
Dairou, Julien
Cosentino, Cristina
Fantuzzi, Federica
Toivonen, Sanna
Marchetti, Piero
Magnan, Christophe
Cnop, Miriam
Le Stunff, Hervé
Scharfmann, Raphaël
Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity
title Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity
title_full Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity
title_fullStr Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity
title_full_unstemmed Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity
title_short Stearoyl CoA desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity
title_sort stearoyl coa desaturase is a gatekeeper that protects human beta cells against lipotoxicity and maintains their identity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6946759/
https://www.ncbi.nlm.nih.gov/pubmed/31796987
http://dx.doi.org/10.1007/s00125-019-05046-x
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