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A muscle-specific UBE2O/AMPKα2 axis promotes insulin resistance and metabolic syndrome in obesity
Isabelle K. Vila, Mi Kyung Park, Stephanie Rebecca Setijono, Yixin Yao, Hyejin Kim, Pierre-Marie Badin, Sekyu Choi, Vihang Narkar, Sung-Woo Choi, Jongkyeong Chung, Cedric Moro, Su Jung Song, Min Sup Song
Isabelle K. Vila, Mi Kyung Park, Stephanie Rebecca Setijono, Yixin Yao, Hyejin Kim, Pierre-Marie Badin, Sekyu Choi, Vihang Narkar, Sung-Woo Choi, Jongkyeong Chung, Cedric Moro, Su Jung Song, Min Sup Song
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Research Article Endocrinology Metabolism

A muscle-specific UBE2O/AMPKα2 axis promotes insulin resistance and metabolic syndrome in obesity

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Abstract

Ubiquitin-conjugating enzyme E2O (UBE2O) is expressed preferentially in metabolic tissues, but its role in regulating energy homeostasis has yet to be defined. Here we find that UBE2O is markedly upregulated in obese subjects with type 2 diabetes and show that whole-body disruption of Ube2o in mouse models in vivo results in improved metabolic profiles and resistance to high-fat diet–induced (HFD-induced) obesity and metabolic syndrome. With no difference in nutrient intake, Ube2o–/– mice were leaner and expended more energy than WT mice. In addition, hyperinsulinemic-euglycemic clamp studies revealed that Ube2o–/– mice were profoundly insulin sensitive. Through phenotype analysis of HFD mice with muscle-, fat-, or liver–specific knockout of Ube2o, we further identified UBE2O as an essential regulator of glucose and lipid metabolism programs in skeletal muscle, but not in adipose or liver tissue. Mechanistically, UBE2O acted as a ubiquitin ligase and targeted AMPKα2 for ubiquitin-dependent degradation in skeletal muscle; further, muscle-specific heterozygous knockout of Prkaa2 ablated UBE2O-controlled metabolic processes. These results identify the UBE2O/AMPKα2 axis as both a potent regulator of metabolic homeostasis in skeletal muscle and a therapeutic target in the treatment of diabetes and metabolic disorders.

Authors

Isabelle K. Vila, Mi Kyung Park, Stephanie Rebecca Setijono, Yixin Yao, Hyejin Kim, Pierre-Marie Badin, Sekyu Choi, Vihang Narkar, Sung-Woo Choi, Jongkyeong Chung, Cedric Moro, Su Jung Song, Min Sup Song

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Figure 5

Adipose tissue–specific Ube2o-knockout mice do not have improved fat metabolism on an HFD.

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Adipose tissue–specific Ube2o-knockout mice do not have improved fat met...
(A) Body weights of control (Ube2ofl/fl) and Ube2oΔAdip mice fed an HFD for 20 weeks. n = 10. (B) Adipose depot weight of control and Ube2oΔAdip mice on an HFD for 20 weeks. SAT, subcutaneous adipose tissue; VAT, visceral adipose tissue; BAT, brown adipose tissue. Ube2ofl/fl n = 8, Ube2oΔAdip n = 10. (C) H&E-stained sections of SAT in control and Ube2oΔAdip mice on an HFD for 20 weeks. Scale bars: 75 μm. (D) Plasma levels of TC (mg/dL) in control and Ube2oΔAdip mice on an HFD for 20 weeks. Ube2ofl/fl n = 8, Ube2oΔAdip n = 10. (E) Liver weight of control and Ube2oΔAdip mice on an HFD for 20 weeks. Ube2ofl/fl n = 8, Ube2oΔAdip n = 10. (F) Hepatic TG level per gram of liver in control and Ube2oΔAdip mice on an HFD for 20 weeks. Ube2ofl/fl n = 8, Ube2oΔAdip n = 9. (G) H&E-stained sections of liver in control and Ube2oΔAdip mice on an HFD for 20 weeks. Scale bars: 75 μm. GTTs (H) and ITTs (I) in control and Ube2oΔAdip mice on an HFD for 16 weeks. Insets indicate AUC (H) and AAC (I). n = 9. (J) Immunoblots showing insulin-induced (200 nM) tyrosine phosphorylation of IRS1 immunoprecipitates and S473 phosphorylation of AKT protein and their total protein levels in VAT from control and Ube2oΔAdip mice on an HFD for 20 weeks. Error bars represent ±SEM. P value was determined by Student’s t test.

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