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SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance

Selenoprotein N (SELENON) is an endoplasmic reticulum (ER) protein whose loss of function leads to a congenital myopathy associated with insulin resistance (SEPN1-related myopathy). The exact cause of the insulin resistance in patients with SELENON loss of function is not known. Skeletal muscle is t...

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Autores principales: Varone, Ersilia, Pozzer, Diego, Di Modica, Simona, Chernorudskiy, Alexander, Nogara, Leonardo, Baraldo, Martina, Cinquanta, Mario, Fumagalli, Stefano, Villar-Quiles, Rocio Nur, De Simoni, Maria-Grazia, Blaauw, Bert, Ferreiro, Ana, Zito, Ester
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6438913/
https://www.ncbi.nlm.nih.gov/pubmed/30921636
http://dx.doi.org/10.1016/j.redox.2019.101176
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author Varone, Ersilia
Pozzer, Diego
Di Modica, Simona
Chernorudskiy, Alexander
Nogara, Leonardo
Baraldo, Martina
Cinquanta, Mario
Fumagalli, Stefano
Villar-Quiles, Rocio Nur
De Simoni, Maria-Grazia
Blaauw, Bert
Ferreiro, Ana
Zito, Ester
author_facet Varone, Ersilia
Pozzer, Diego
Di Modica, Simona
Chernorudskiy, Alexander
Nogara, Leonardo
Baraldo, Martina
Cinquanta, Mario
Fumagalli, Stefano
Villar-Quiles, Rocio Nur
De Simoni, Maria-Grazia
Blaauw, Bert
Ferreiro, Ana
Zito, Ester
author_sort Varone, Ersilia
collection PubMed
description Selenoprotein N (SELENON) is an endoplasmic reticulum (ER) protein whose loss of function leads to a congenital myopathy associated with insulin resistance (SEPN1-related myopathy). The exact cause of the insulin resistance in patients with SELENON loss of function is not known. Skeletal muscle is the main contributor to insulin-mediated glucose uptake, and a defect in this muscle-related mechanism triggers insulin resistance and glucose intolerance. We have studied the chain of events that connect the loss of SELENON with defects in insulin-mediated glucose uptake in muscle cells and the effects of this on muscle performance. Here, we show that saturated fatty acids are more lipotoxic in SELENON-devoid cells, and blunt the insulin-mediated glucose uptake of SELENON-devoid myotubes by increasing ER stress and mounting a maladaptive ER stress response. Furthermore, the hind limb skeletal muscles of SELENON KO mice fed a high-fat diet mirrors the features of saturated fatty acid-treated myotubes, and show signs of myopathy with a compromised force production. These findings suggest that the absence of SELENON together with a high-fat dietary regimen increases susceptibility to insulin resistance by triggering a chronic ER stress in skeletal muscle and muscle weakness. Importantly, our findings suggest that environmental cues eliciting ER stress in skeletal muscle (such as a high-fat diet) affect the pathological phenotype of SEPN1-related myopathy and can therefore contribute to the assessment of prognosis beyond simple genotype-phenotype correlations.
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spelling pubmed-64389132019-04-11 SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance Varone, Ersilia Pozzer, Diego Di Modica, Simona Chernorudskiy, Alexander Nogara, Leonardo Baraldo, Martina Cinquanta, Mario Fumagalli, Stefano Villar-Quiles, Rocio Nur De Simoni, Maria-Grazia Blaauw, Bert Ferreiro, Ana Zito, Ester Redox Biol Research Paper Selenoprotein N (SELENON) is an endoplasmic reticulum (ER) protein whose loss of function leads to a congenital myopathy associated with insulin resistance (SEPN1-related myopathy). The exact cause of the insulin resistance in patients with SELENON loss of function is not known. Skeletal muscle is the main contributor to insulin-mediated glucose uptake, and a defect in this muscle-related mechanism triggers insulin resistance and glucose intolerance. We have studied the chain of events that connect the loss of SELENON with defects in insulin-mediated glucose uptake in muscle cells and the effects of this on muscle performance. Here, we show that saturated fatty acids are more lipotoxic in SELENON-devoid cells, and blunt the insulin-mediated glucose uptake of SELENON-devoid myotubes by increasing ER stress and mounting a maladaptive ER stress response. Furthermore, the hind limb skeletal muscles of SELENON KO mice fed a high-fat diet mirrors the features of saturated fatty acid-treated myotubes, and show signs of myopathy with a compromised force production. These findings suggest that the absence of SELENON together with a high-fat dietary regimen increases susceptibility to insulin resistance by triggering a chronic ER stress in skeletal muscle and muscle weakness. Importantly, our findings suggest that environmental cues eliciting ER stress in skeletal muscle (such as a high-fat diet) affect the pathological phenotype of SEPN1-related myopathy and can therefore contribute to the assessment of prognosis beyond simple genotype-phenotype correlations. Elsevier 2019-03-23 /pmc/articles/PMC6438913/ /pubmed/30921636 http://dx.doi.org/10.1016/j.redox.2019.101176 Text en © 2019 The Authors. Published by Elsevier B.V. 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 Research Paper
Varone, Ersilia
Pozzer, Diego
Di Modica, Simona
Chernorudskiy, Alexander
Nogara, Leonardo
Baraldo, Martina
Cinquanta, Mario
Fumagalli, Stefano
Villar-Quiles, Rocio Nur
De Simoni, Maria-Grazia
Blaauw, Bert
Ferreiro, Ana
Zito, Ester
SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance
title SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance
title_full SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance
title_fullStr SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance
title_full_unstemmed SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance
title_short SELENON (SEPN1) protects skeletal muscle from saturated fatty acid-induced ER stress and insulin resistance
title_sort selenon (sepn1) protects skeletal muscle from saturated fatty acid-induced er stress and insulin resistance
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6438913/
https://www.ncbi.nlm.nih.gov/pubmed/30921636
http://dx.doi.org/10.1016/j.redox.2019.101176
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