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Endospanin-2 enhances skeletal muscle energy metabolism and running endurance capacity
Steve Lancel, Matthijs K.C. Hesselink, Estelle Woldt, Yves Rouillé, Emilie Dorchies, Stephane Delhaye, Christian Duhem, Quentin Thorel, Alicia Mayeuf-Louchart, Benoit Pourcet, Valérie Montel, Gert Schaart, Nicolas Beton, Florence Picquet, Olivier Briand, Jean Pierre Salles, Hélène Duez, Patrick Schrauwen, Bruno Bastide, Bernard Bailleul, Bart Staels, Yasmine Sebti
Steve Lancel, Matthijs K.C. Hesselink, Estelle Woldt, Yves Rouillé, Emilie Dorchies, Stephane Delhaye, Christian Duhem, Quentin Thorel, Alicia Mayeuf-Louchart, Benoit Pourcet, Valérie Montel, Gert Schaart, Nicolas Beton, Florence Picquet, Olivier Briand, Jean Pierre Salles, Hélène Duez, Patrick Schrauwen, Bruno Bastide, Bernard Bailleul, Bart Staels, Yasmine Sebti
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Research Article Metabolism Muscle biology

Endospanin-2 enhances skeletal muscle energy metabolism and running endurance capacity

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Abstract

Metabolic stresses such as dietary energy restriction or physical activity exert beneficial metabolic effects. In the liver, endospanin-1 and endospanin-2 cooperatively modulate calorie restriction–mediated (CR-mediated) liver adaptations by controlling growth hormone sensitivity. Since we found CR to induce endospanin protein expression in skeletal muscle, we investigated their role in this tissue. In vivo and in vitro endospanin-2 triggers ERK phosphorylation in skeletal muscle through an autophagy-dependent pathway. Furthermore, endospanin-2, but not endospanin-1, overexpression decreases muscle mitochondrial ROS production, induces fast-to-slow fiber-type switch, increases skeletal muscle glycogen content, and improves glucose homeostasis, ultimately promoting running endurance capacity. In line, endospanin-2–/– mice display higher lipid peroxidation levels, increased mitochondrial ROS production under mitochondrial stress, decreased ERK phosphorylation, and reduced endurance capacity. In conclusion, our results identify endospanin-2 as a potentially novel player in skeletal muscle metabolism, plasticity, and function.

Authors

Steve Lancel, Matthijs K.C. Hesselink, Estelle Woldt, Yves Rouillé, Emilie Dorchies, Stephane Delhaye, Christian Duhem, Quentin Thorel, Alicia Mayeuf-Louchart, Benoit Pourcet, Valérie Montel, Gert Schaart, Nicolas Beton, Florence Picquet, Olivier Briand, Jean Pierre Salles, Hélène Duez, Patrick Schrauwen, Bruno Bastide, Bernard Bailleul, Bart Staels, Yasmine Sebti

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Figure 2

Endospanin-2 activates the ERK cellular stress pathway.

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Endospanin-2 activates the ERK cellular stress pathway.
Western blot ana...
Western blot analysis of (A) phosphorylated ERK 1/2, total ERK1/2, and (B) phosphorylated Stat3 on serine 727 residue and total stat3 protein levels in quadriceps from endospanin-2 Tg mice and their WT littermates (n = 6 per genotype). (C) Western blot analysis of phosphorylated ERK1/2, total ERK1/2, and total Stat3 protein levels on purified mitochondria (see extended experimental procedures and Supplemental Figure 4A) from endospanin-2 Tg mice and their WT littermates (n = 4 per genotype). (D) mPTP opening sensitivity assessed by monitoring OD 540 nm after 75 μM Ca2+ pulse on isolated mitochondria from endospanin-2 Tg mice and their WT littermates (n = 6 per genotype). (E) Western blot analysis of phosphorylated ERK 1/2 and total ERK1/2 protein levels on differentiated endospanin-2 or control (pBabe) retrovirus–infected C2C12 cells (n = 3 per condition). (F) Percentage of positive cells for MitoSOX ± antimycin A evaluated by flow cytometry on differentiated cells treated or not with U0126, an inhibitor of ERK phosphorylation (n = 5 per condition). Results are expressed as means ± SEM; *P < 0.05, **P < 0.01, and ***P < 0.001 by unpaired t test.

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