Hepatic de novo lipogenesis is present in liver-specific ACC1-deficient mice

被引:108
作者
Harada, Naomoto
Oda, Zenjun
Hara, Yoshikazu
Fujinami, Koji
Okawa, Mayumi
Ohbuchi, Katsuya
Yonemoto, Mari
Ikeda, Yuika
Ohwaki, Kenji
Aragane, Katsumi
Tamai, Yoshitaka
Kusunoki, Jun
机构
[1] Banyu Pharmaceut Co Ltd, Tsukuba Res Inst, Tsukuba, Ibaraki 3002611, Japan
[2] Banyu Pharmaceut Co Ltd, Dept Pharmacol, Tsukuba, Ibaraki 3002611, Japan
[3] Banyu Pharmaceut Co Ltd, Dept Metab Disorder Res, Tsukuba, Ibaraki 3002611, Japan
关键词
D O I
10.1128/MCB.01122-06
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Acetyl coenzyme A (acetyl-CoA) carboxylase (ACC) catalyzes carboxyllation of acetyl-CoA to form mallonyl-CoA. In mammals, two isozymes exist with distinct physiological roles: cytosolic ACC1 participates in de novo lipogenesis (DNL), and mitochondrial ACC2 is involved in negative regulation of mitochondrial beta-oxidation. Since systemic ACC1 null mice were embryonic lethal, to clarify the physiological role of ACC1 in hepatic DNL, we generated the liver-specific ACC1 null mouse by crossbreeding of an Ace1(lox(ex46)) mouse, in which exon 46 of Acc1 was flanked by two loxP sequences and the liver-specific Cre transgenic mouse. In liver-specific ACC1 null mice, neither hepatic Acc1 mRNA nor protein was detected. However, to compensate for ACC1 function, hepatic ACC2 protein and activity were induced 1.4 and 2.2 times, respectively. Surprisingly, hepatic DNL and malonyl-CoA were maintained at the same physiological levels as in wild-type mice. Furthermore, hepatic DNL was completely inhibited by an ACC1/2 dual inhibitor, 5-tetradecyloxyl-2-furanearboxylic acid. These results strongly demonstrate that malonyl-CoA from ACC2 can access fatty acid synthase and become the substrate for the DNL pathway under the unphysiological circumstances that result with ACC1 disruption. Therefore, there does not appear to be strict compartmentalization of malonyl-CoA from either of the ACC isozymes in the liver.
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页码:1881 / 1888
页数:8
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