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生物钟的两个重要组成部分BMAL1和CLOCK参与葡萄糖稳态调节。

BMAL1 and CLOCK, two essential components of the circadian clock, are involved in glucose homeostasis.

作者信息

Rudic R Daniel, McNamara Peter, Curtis Anne-Maria, Boston Raymond C, Panda Satchidananda, Hogenesch John B, Fitzgerald Garret A

机构信息

Center for Experimental Therapeutics, University of Pennsylvania, Philadelphia, Pennsylvania, USA.

出版信息

PLoS Biol. 2004 Nov;2(11):e377. doi: 10.1371/journal.pbio.0020377. Epub 2004 Nov 2.

Abstract

Circadian timing is generated through a unique series of autoregulatory interactions termed the molecular clock. Behavioral rhythms subject to the molecular clock are well characterized. We demonstrate a role for Bmal1 and Clock in the regulation of glucose homeostasis. Inactivation of the known clock components Bmal1 (Mop3) and Clock suppress the diurnal variation in glucose and triglycerides. Gluconeogenesis is abolished by deletion of Bmal1 and is depressed in Clock mutants, but the counterregulatory response of corticosterone and glucagon to insulin-induced hypoglycaemia is retained. Furthermore, a high-fat diet modulates carbohydrate metabolism by amplifying circadian variation in glucose tolerance and insulin sensitivity, and mutation of Clock restores the chow-fed phenotype. Bmal1 and Clock, genes that function in the core molecular clock, exert profound control over recovery from insulin-induced hypoglycaemia. Furthermore, asynchronous dietary cues may modify glucose homeostasis via their interactions with peripheral molecular clocks.

摘要

昼夜节律是通过一系列独特的自调节相互作用产生的,这些相互作用被称为分子时钟。受分子时钟影响的行为节律已得到充分表征。我们证明了Bmal1和Clock在葡萄糖稳态调节中的作用。已知的时钟组件Bmal1(Mop3)和Clock的失活抑制了葡萄糖和甘油三酯的昼夜变化。Bmal1的缺失消除了糖异生作用,Clock突变体中的糖异生作用受到抑制,但皮质酮和胰高血糖素对胰岛素诱导的低血糖的反调节反应得以保留。此外,高脂饮食通过放大葡萄糖耐量和胰岛素敏感性的昼夜变化来调节碳水化合物代谢,而Clock的突变恢复了正常饮食喂养的表型。Bmal1和Clock是在核心分子时钟中起作用的基因,对胰岛素诱导的低血糖恢复具有深远的控制作用。此外,不同步的饮食线索可能通过与外周分子时钟的相互作用来改变葡萄糖稳态。

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