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β3-Adrenergic receptors regulate human brown/beige adipocyte lipolysis and thermogenesis
Cheryl Cero, Hannah J. Lea, Kenneth Y. Zhu, Farnaz Shamsi, Yu-Hua Tseng, Aaron M. Cypess
Cheryl Cero, Hannah J. Lea, Kenneth Y. Zhu, Farnaz Shamsi, Yu-Hua Tseng, Aaron M. Cypess
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Research Article Cell biology Metabolism

β3-Adrenergic receptors regulate human brown/beige adipocyte lipolysis and thermogenesis

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Abstract

β3-Adrenergic receptors (β3-ARs) are the predominant regulators of rodent brown adipose tissue (BAT) thermogenesis. However, in humans, the physiological relevance of BAT and β3-AR remains controversial. Herein, using primary human adipocytes from supraclavicular neck fat and immortalized brown/beige adipocytes from deep neck fat from 2 subjects, we demonstrate that the β3-AR plays a critical role in regulating lipolysis, glycolysis, and thermogenesis. Silencing of the β3-AR compromised genes essential for thermogenesis, fatty acid metabolism, and mitochondrial mass. Functionally, reduction of β3-AR lowered agonist-mediated increases in intracellular cAMP, lipolysis, and lipolysis-activated, uncoupling protein 1–mediated thermogenic capacity. Furthermore, mirabegron, a selective human β3-AR agonist, stimulated BAT lipolysis and thermogenesis, and both processes were lost after silencing β3-AR expression. This study highlights that β3-ARs in human brown/beige adipocytes are required to maintain multiple components of the lipolytic and thermogenic cellular machinery and that β3-AR agonists could be used to achieve metabolic benefit in humans.

Authors

Cheryl Cero, Hannah J. Lea, Kenneth Y. Zhu, Farnaz Shamsi, Yu-Hua Tseng, Aaron M. Cypess

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Figure 2

Silencing ADRB3 in human brown/beige adipocytes lowers cAMP and affects β-AR–stimulated lipolysis.

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Silencing ADRB3 in human brown/beige adipocytes lowers cAMP and affects ...
(A and B) Basal, forskolin-stimulated (Fsk 10 μM) and isoproterenol-stimulated (Iso 1 μM), cAMP concentration (A) and glycerol release (B) in siRNA-Ctrl and siRNA-ADRB3 adipocytes. (C) RNA levels of lipolytic genes PNPLA2, LIPE, and ABHD5 in siRNA-Ctrl and siRNA-ADRB3 adipocytes. (D) Protein expression of pHSL563, pHSL660, HSL, ATGL, CGI-58, perilipin, and actin in cell lysates following Fsk treatment. (E–G) Quantification of HSL (E), ATGL (F), and CGI-58 (G) from Western blotting analysis. (H) Glycerol released into the incubation media following dose-dependent treatment with mirabegron (1-10-100-1000-10,000 nM) in siRNA-Ctrl– and siRNA-ADRB3–transfected adipocytes. (I) Glycerol released by siRNA-Ctrl and siRNA-ADRB3 adipocytes treated with 10 μM of relatively selective human β1 agonist dobutamine, β2 agonist terbutaline, and β3 agonist mirabegron. Fsk (10 μM) and Iso (1 μM) were used as positive controls of agonist-induced lipolysis. Data are represented as mean ± SEM. Two-tailed unpaired Student’s t test and a 2-way ANOVA were used for statistical analysis. Gene expression data are normalized to siRNA-Ctrl adipocytes and expressed on a log10 scale. For cAMP and lipolysis data, *when comparing basal with stimulated in siRNA-Ctrl, $when comparing basal with stimulated in siRNA-ADRB3 adipocytes, #when comparing same doses between siRNA-Ctrl and siRNA-ADRB3 adipocytes. *,$,#P < 0.05; **,$$,##P < 0.01; ***,$$$P < 0.001; ****,$$$$,####P < 0.0001.

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ISSN 2379-3708

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