Triiodothyronine induces UCP-1 expression and mitochondrial biogenesis in human adipocytes

Author:

Lee Joo-Young1,Takahashi Nobuyuki12,Yasubuchi Midori1,Kim Young-Il1,Hashizaki Hikari1,Kim Min-Ji1,Sakamoto Tomoya1,Goto Tsuyoshi12,Kawada Teruo12

Affiliation:

1. Laboratory of Molecular Function of Food, Division of Food Science and Biotechnology, Graduate School of Agriculture, and

2. Research Unit for Physiological Chemistry, the Center for the Promotion of Interdisciplinary Education and Research, Kyoto University, Kyoto, Japan

Abstract

Uncoupling protein (UCP)-1 expressed in brown adipose tissue plays an important role in thermogenesis. Recent data suggest that brown-like adipocytes in white adipose tissue (WAT) and skeletal muscle play a crucial role in the regulation of body weight. Understanding of the mechanism underlying the increase in UCP-1 expression level in these organs should, therefore, provide an approach to managing obesity. The thyroid hormone (TH) has profound effects on mitochondrial biogenesis and promotes the mRNA expression of UCP in skeletal muscle and brown adipose tissue. However, the action of TH on the induction of brown-like adipocytes in WAT has not been elucidated. Thus we investigate whether TH could regulate UCP-1 expression in WAT using multipotent cells isolated from human adipose tissue. In this study, triiodothyronine (T3) treatment induced UCP-1 expression and mitochondrial biogenesis, accompanied by the induction of the CCAAT/enhancer binding protein, peroxisome proliferator-activated receptor-γ coactivator-1α, and nuclear respiratory factor-1 in differentiated human multipotent adipose-derived stem cells. The effects of T3on UCP-1 induction were dependent on TH receptor-β. Moreover, T3treatment increased oxygen consumption rate. These findings indicate that T3is an active modulator, which induces energy utilization in white adipocytes through the regulation of UCP-1 expression and mitochondrial biogenesis. Our findings provide evidence that T3serves as a bipotential mediator of mitochondrial biogenesis.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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