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Ubc9 Impairs Activation of the Brown Fat Energy Metabolism Program in Human White Adipocytes
Sean M Hartig1, David A Bader1, Kathleen V Abadie1
1Department of Molecular and Cellular Biology (S.M.H., D.A.B., K.V.A., M.Mo., M.P.H., W.L., B.Y., L.C., D.D.M., M.A.M., S.E.M.), Baylor College of Medicine, Houston, Texas 77030; Department of Biochemistry and Molecular Biology (W.L.), Wright State University Boonshoft School of Medicine, Dayton, Ohio 45435; Hans Popper Laboratory of Molecular Hepatology (M.Mu., M.T.), Division of Gastroenterology and Hepatology, Department of Internal Medicine III, Medical University of Vienna, Vienna, Austria; Laboratory of Experimental Hepatology (M.W.), Division of Gastroenterology and Hepatology, Department of Internal Medicine, Medical University of Graz, Graz, Austria; Diabetes and Endocrinology Research Center (L.C., M.B.), Division of Diabetes, Endocrinology, and Metabolism, Department of Medicine, Baylor College of Medicine, and the Baylor St Luke's Medical Center, Houston, Texas 77030; and Division of Radiation Oncology (S.E.M.), The University of Texas MD Anderson Cancer Center, Houston, Texas 77030.
Abstract:
Insulin resistance and type 2 diabetes mellitus (T2DM) result from an inability to efficiently store and catabolize surplus energy in adipose tissue. Subcutaneous adipocytes protect against insulin resistance and T2DM by coupling differentiation with the induction of brown fat gene programs for efficient energy metabolism. Mechanisms that disrupt these programs in adipocytes are currently poorly defined, but represent therapeutic targets for the treatment of T2DM. To gain insight into these mechanisms, we performed a high-throughput microscopy screen that identified ubiquitin carrier protein 9 (Ubc9) as a negative regulator of energy storage in human sc adipocytes. Ubc9 depletion enhanced energy storage and induced the brown fat gene program in human sc adipocytes. Induction of adipocyte differentiation resulted in decreased Ubc9 expression commensurate with increased brown fat gene expression. Thiazolidinedione treatment reduced the interaction between Ubc9 and peroxisome proliferator-activated receptor (PPAR)γ, suggesting a mechanism by which Ubc9 represses PPARγ activity. In support of this hypothesis, Ubc9 overexpression remodeled energy metabolism in human sc adipocytes by selectively inhibiting brown adipocyte-specific function. Further, Ubc9 overexpression decreased uncoupling protein 1 expression by disrupting PPARγ binding at a critical uncoupling protein 1 enhancer region. Last, Ubc9 is significantly elevated in sc adipose tissue isolated from mouse models of insulin resistance as well as diabetic and insulin-resistant humans. Taken together, our findings demonstrate a critical role for Ubc9 in the regulation of sc adipocyte energy homeostasis.
Insights
Ubiquitin carrier protein 9 (Ubc9) negatively regulates energy storage in fat cells, impacting insulin resistance and type 2 diabetes. Lowering Ubc9 boosts brown fat programs for better energy metabolism.
Area of Science:
- Metabolic disease research
- Cellular biology
- Adipocyte function
Background:
- Insulin resistance and type 2 diabetes mellitus (T2DM) are linked to impaired energy storage in adipose tissue.
- Subcutaneous adipocytes promote metabolic health by activating brown fat gene programs.
- Understanding factors disrupting these programs is crucial for T2DM therapeutics.
Purpose of the Study:
- To identify novel regulators of energy storage and brown fat gene programs in human subcutaneous (sc) adipocytes.
- To investigate the role of ubiquitin carrier protein 9 (Ubc9) in adipocyte energy homeostasis.
Main Methods:
- High-throughput microscopy screen to identify regulators of adipocyte energy storage.
- Analysis of Ubc9 expression and function in differentiating human sc adipocytes.
- Investigation of Ubc9 interaction with peroxisome proliferator-activated receptor gamma (PPARγ) and its effect on gene expression.
Main Results:
- Ubc9 was identified as a negative regulator of energy storage in human sc adipocytes.
- Ubc9 depletion enhanced energy storage and induced brown fat gene programs.
- Ubc9 overexpression inhibited brown adipocyte-specific functions and decreased uncoupling protein 1 (UCP1) expression by disrupting PPARγ binding.
- Ubc9 levels were elevated in insulin-resistant and diabetic conditions in mice and humans.
Conclusions:
- Ubc9 plays a critical role in regulating sc adipocyte energy homeostasis.
- Targeting Ubc9 may offer a therapeutic strategy for T2DM by improving adipocyte function and energy metabolism.
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