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Akt3 inhibits adipogenesis and protects from diet-induced obesity via WNK1/SGK1 signaling
Liang Ding, Lifang Zhang, Sudipta Biswas, Rebecca C. Schugar, J. Mark Brown, Tatiana Byzova, Eugene Podrez
Liang Ding, Lifang Zhang, Sudipta Biswas, Rebecca C. Schugar, J. Mark Brown, Tatiana Byzova, Eugene Podrez
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Research Article Metabolism

Akt3 inhibits adipogenesis and protects from diet-induced obesity via WNK1/SGK1 signaling

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Abstract

Three Akt isoforms, encoded by 3 separate genes, are expressed in mammals. While the roles of Akt1 and Akt2 in metabolism are well established, it is not yet known whether Akt3 plays a role in metabolic diseases. We now report that Akt3 protects mice from high-fat diet–induced obesity by suppressing an alternative pathway of adipogenesis via with no lysine protein kinase-1 (WNK1) and serum/glucocorticoid-inducible kinase 1 (SGK1). We demonstrate that Akt3 specifically phosphorylates WNK1 at T58 and promotes its degradation via the ubiquitin-proteasome pathway. A lack of Akt3 in adipocytes increases the WNK1 protein level, leading to activation of SGK1. SGK1, in turn, promotes adipogenesis by phosphorylating and inhibiting transcription factor FOXO1 and, subsequently, activating the transcription of PPARγ in adipocytes. Akt3-deficient mice have an increased number of adipocytes and, when fed a high-fat diet, display increased weight gain, white adipose tissue expansion, and impaired glucose homeostasis. Pharmacological blockade of SGK1 in high-fat diet–fed Akt3-deficient mice suppressed adipogenesis, prevented excessive weight gain and adiposity, and ameliorated metabolic parameters. Thus, Akt3/WNK1/SGK1 represents a potentially novel signaling pathway controlling the development of obesity.

Authors

Liang Ding, Lifang Zhang, Sudipta Biswas, Rebecca C. Schugar, J. Mark Brown, Tatiana Byzova, Eugene Podrez

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Figure 2

Akt3 regulates adipogenesis via a FOXO1 pathway.

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Akt3 regulates adipogenesis via a FOXO1 pathway.
(A) Plasma adiponectin ...
(A) Plasma adiponectin levels in 20-week-old WT and Akt3–/– mice on a chow diet (n = 10, 5 male, 5 female) were assessed by a mouse adiponectin ELISA kit. (B) Western blot analyses of FOXO1, phospho-FOXO1, and PPARγ expression in mouse embryonic fibroblasts (MEF) from WT, Akt1–/–, and Akt3–/– MEF. n = 4. Lower graphs show densitometric quantification. (C) Western blot analysis of FOXO1, phospho-FOXO1, and adiponectin expression in MEF differentiated adipocytes. n = 4. Lower graphs show densitometric quantification. (D) Immunofluorescent staining of WT and Akt3–/– MEF using anti-FOXO1 or anti–phospho-FOXO1 (Ser256) antibody. Scale bar: 25 μm. n = 5. (E) Expression of FOXO1, PPARγ, Akt1, and Akt3 in 3T3 differentiated adipocytes after treatment with indicated siRNA. n = 3. Right graph shows densitometric quantification. (F) Oil red O staining of ferentiated adipocytes after treatment with plasmid encoding FOXO1 gene. Scale bar: 200 μm. n = 3. (G) The cytoplasmic and nuclear expression of Akt1, Akt3, p-Akt (thr308), and total Akt in WT and Akt3–/– MEF. Lamin B1 was used as loading controls. Right panel shows subcellular localization of Akt1 and Akt3 in WT MEF. n = 3. C, cytoplasm; N, nucleus. (H) Subcellular localization of Akt1 and Akt3 in 3T3 differentiated adipocytes. Lipid was stained with BODIPY 493/503 (green) or HCS LipidTOX Red Neutral Lipid Stain (red). DAPI (blue) was used as the nuclear marker. Scale bar: 10 μm. n = 4. (I) Expression of Akt1, Akt2, Akt3, pan-Akt, and phospho-Akt (Ser473) in WT, Akt1–/–, and Akt3–/– MEF. Graphs on the right show densitometric quantification. n = 4. Right graph shows densitometric quantification. Data represent means ± SEM. *P < 0.05 by 2-tailed Student’s t test.

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