[PDF][PDF] Targeted disruption of G protein-coupled bile acid receptor 1 (Gpbar1/M-Bar) in mice

T Maruyama, K Tanaka, J Suzuki… - Journal of …, 2006 - joe.bioscientifica.com
T Maruyama, K Tanaka, J Suzuki, H Miyoshi, N Harada, T Nakamura, Y Miyamoto…
Journal of Endocrinology, 2006joe.bioscientifica.com
G protein-coupled bile acid receptor 1 (Gpbar1/M-Bar) is a novel G protein-coupled receptor
for bile acid. Tissue distribution and cell-type specificity of Gpbar1 mRNA suggest a potential
role for the receptor in the endocrine system; however, the precise physiological role of
Gpbar1 still remains to be elucidated. To investigate the role of Gpbar1 in vivo, the Gpbar1
gene was disrupted in mice. In homozygous mice, total bile acid pool size was significantly
decreased by 21–25% compared with that of the wild-type mice, suggesting that Gpbar1 …
Abstract
G protein-coupled bile acid receptor 1 (Gpbar1/M-Bar) is a novel G protein-coupled receptor for bile acid. Tissue distribution and cell-type specificity of Gpbar1 mRNA suggest a potential role for the receptor in the endocrine system; however, the precise physiological role of Gpbar1 still remains to be elucidated. To investigate the role of Gpbar1 in vivo, the Gpbar1 gene was disrupted in mice. In homozygous mice, total bile acid pool size was significantly decreased by 21–25% compared with that of the wild-type mice, suggesting that Gpbar1 contributes to bile acid homeostasis. In order to assess the impact of Gpbar1 deficiency in bile acid homeostasis more precisely, Gpbar1 homozygous mice were fed a high-fat diet for 2 months. As a result, female Gpbar1 homozygous mice showed significant fat accumulation with body weight gain compared with that of the wild-type mice. These findings were also observed in heterozygous mice to the same extent. Although the precise mechanism for fat accumulation in female Gpbar1 homozygous mice remains to be addressed, these data indicate that Gpbar1 is a potential new player in energy homeostasis. Thus, Gpbar1-deficient mice are useful in elucidating new physiological roles for Gpbar1.
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