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Expression and regulation of the AMP-activated protein kinase-SNF1 (sucrose non-fermenting 1) kinase complexes in yeast and mammalian cells: studies using chimaeric catalytic subunits.

机译:AMP和活化的蛋白激酶SNF1(蔗糖非发酵1)激酶复合物在酵母和哺乳动物细胞中的表达和调控:使用嵌合催化亚基的研究。

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摘要

Mammalian AMP-activated protein kinase (AMPK) and yeast SNF1 (sucrose non-fermenting 1) kinase are members of a highly conserved protein kinase family that plays an important role in energy homoeostasis. AMPK and SNF1 kinase are heterotrimeric complexes consisting of a catalytic subunit and two regulatory subunits. We swapped the C-terminal regulatory domains of the catalytic subunits of AMPK (alpha) and SNF1 kinase (Snf1) and compared the expression and regulation of these chimaeric proteins with the native catalytic subunits in both mammalian and yeast cells. In mammalian cells, alpha1-Snf1 yielded a functional kinase complex following co-expression with the yeast regulatory subunits Sip2 and Snf4. Unlike native AMPK, the alpha 1-Snf1 complex was not activated by the stresses that deplete intracellular AMP. Significantly, hyperosmotic stress led to the marked activation of both the alpha 1-Snf1 complex and AMPK, without a detectable change in adenine nucleotide levels, indicating that an alternative, non-AMP-dependent, pathway was responsible for activation. alpha1-Snf1 was able to restore growth of snf1 mutant yeast on raffinose and phosphorylated the transcriptional repressor protein Mig1. Co-expression of the AMPK trimeric complex in yeast yielded an activity, increased by low glucose, that was similar to native SNF1 kinase. Importantly, expression of AMPK restored growth of a snf1 mutant on raffinose. Our results provide clues to the regulation of AMPK and SNF1 kinase and demonstrate that, in mammalian cells, there are at least two pathways that can activate AMPK, namely one that involves an increase in the AMP/ATP ratio and one that is independent of this ratio. In yeast, the glucose signalling pathway is able to activate AMPK, suggesting that the mammalian and yeast kinase pathways are conserved.
机译:哺乳动物AMP激活的蛋白激酶(AMPK)和酵母SNF1(非蔗糖非发酵型1)激酶是高度保守的蛋白激酶家族的成员,该家族在能量稳态中起重要作用。 AMPK和SNF1激酶是由催化亚基和两个调节亚基组成的异三聚体复合物。我们交换了AMPK(α)和SNF1激酶(Snf1)的催化亚基的C末端调节域,并比较了这些嵌合蛋白与哺乳动物和酵母细胞中天然催化亚基的表达和调控。在哺乳动物细胞中,α1-Snf1与酵母调节亚基Sip2和Snf4共表达后产生功能性激酶复合物。与天然AMPK不同,α1-Snf1复合物并未被消耗细胞内AMP的压力激活。重要的是,高渗胁迫导致α1-Snf1复合体和AMPK均显着激活,但腺嘌呤核苷酸水平没有可检测的变化,表明另一种非AMP依赖性途径负责激活。 alpha1-Snf1能够在棉子糖上恢复snf1突变酵母的生长,并使转录阻遏蛋白Mig1磷酸化。酵母中AMPK三聚体复合物的共表达产生了一种活性,该活性由于低葡萄糖而增加,与天然SNF1激酶相似。重要的是,AMPK的表达恢复了棉子糖上snf1突变体的生长。我们的结果为调节AMPK和SNF1激酶提供了线索,并证明,在哺乳动物细胞中,至少有两种途径可以激活AMPK,即一种途径涉及AMP / ATP比的增加,而另一种途径与此无关。比。在酵母中,葡萄糖信号通路能够激活AMPK,这表明哺乳动物和酵母激酶通路是保守的。

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