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蛋白激酶B和叉头转录因子FKHR对PGC-1启动子活性的调控。

Regulation of PGC-1 promoter activity by protein kinase B and the forkhead transcription factor FKHR.

作者信息

Daitoku Hiroaki, Yamagata Kazuyuki, Matsuzaki Hitomi, Hatta Mitsutoki, Fukamizu Akiyoshi

机构信息

Center for Tsukuba Advanced Research Alliance, Institute of Applied Biochemistry, University of Tsukuba, Tennoudai 1-1-1, Tsukuba, Ibaraki 305-8577, Japan.

出版信息

Diabetes. 2003 Mar;52(3):642-9. doi: 10.2337/diabetes.52.3.642.

DOI:10.2337/diabetes.52.3.642
PMID:12606503
Abstract

Peroxisome proliferator-activated receptor-gamma coactivator-1 (PGC-1) plays a major role in mediating hepatic gluconeogenesis in response to starvation, during which PGC-1 is induced by the cyclic AMP response element binding protein. Although it is observed that insulin counteracts PGC-1 transcription, the mechanism by which insulin suppresses the transcription of PGC-1 is still unclear. Here, we show that forkhead transcription factor FKHR contributes to mediating the effects of insulin on PGC-1 promoter activity. Reporter assays demonstrate that insulin suppresses the basal PGC-1 promoter activity and that coexpression of protein kinase (PK)-B mimics the effect of insulin in HepG2 cells. Insulin response sequences (IRSs) are addressed in the PGC-1 promoter as the direct target for FKHR in vivo. Coexpression of FKHR stimulates the PGC-1 promoter activity via interaction with the IRSs, while coexpression of FKHR (3A), in which the three putative PKB sites in FKHR are mutated, mainly abolishes the suppressive effect of PKB. Whereas deletion of the IRSs prevents the promoter stimulation by FKHR, that activity is still partially inhibited by insulin. These results indicate that signaling via PKB to FKHR can partly account for the effect of insulin to regulate the PGC-1 promoter activity via the IRSs.

摘要

过氧化物酶体增殖物激活受体γ共激活因子1(PGC-1)在介导饥饿状态下的肝脏糖异生过程中起主要作用,在此期间PGC-1由环磷酸腺苷反应元件结合蛋白诱导产生。尽管观察到胰岛素可对抗PGC-1转录,但其抑制PGC-1转录的机制仍不清楚。在此,我们表明叉头转录因子FKHR有助于介导胰岛素对PGC-1启动子活性的影响。报告基因检测表明胰岛素抑制PGC-1启动子的基础活性,并且蛋白激酶(PK)-B的共表达在HepG2细胞中模拟了胰岛素的作用。胰岛素反应序列(IRSs)在PGC-1启动子中被确定为体内FKHR的直接靶点。FKHR的共表达通过与IRSs相互作用刺激PGC-1启动子活性,而FKHR(3A)(其中FKHR中的三个假定PKB位点发生突变)的共表达主要消除了PKB的抑制作用。虽然IRSs的缺失阻止了FKHR对启动子的刺激,但该活性仍被胰岛素部分抑制。这些结果表明,通过PKB向FKHR的信号传导可以部分解释胰岛素通过IRSs调节PGC-1启动子活性的作用。

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