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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 5

Silencing ADRB1 in primary brown/beige adipocytes decreases UCP1 expression but does not decrease lipolysis or cellular respiration.

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Silencing ADRB1 in primary brown/beige adipocytes decreases UCP1 express...
(A–G) The mRNA expression profiles of β-ARs (A), thermogenic related genes (B), mtDNA-encoded genes (C), glucose transporters (D), fatty acid oxidation genes (E), fatty acid synthesis genes (F), and lipolytic genes PNPLA2, LIPE, and ABHD5 (G) in siRNA-Ctrl and siRNA-ADRB1 adipocytes after 48 hours of transfection. (H and I) Fsk-stimulated (10 μM) and Iso-stimulated (1 μM) cAMP (H) and glycerol release (I) in siRNA-Ctrl and siRNA-ADRB1 adipocytes. (J) RNA levels of nuclear encoded ETC genes in siRNA-Ctrl and siRNA-ADRB1 adipocytes. (K–M) OCR trace (K) and quantification of basal respiration (L) and respiratory profile (M) by differentiated siRNA-Ctrl– and siRNA-ADRB1–transfected adipocytes. 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-ADRB1 adipocytes, #when comparing same doses between siRNA-Ctrl and siRNA-ADRB1 adipocytes. *P < 0.05; **,$$,##P < 0.01; ***,###P < 0.001; ****,$$$$,####P < 0.0001.

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