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Energy-dependent regulation of cell structure by AMP-activated protein kinase

机译:AMP激活的蛋白激酶对细胞结构的能量依赖性调节

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AMP-activated protein kinase (AMPK, also known as SNF1A) has been primarily studied as a metabolic regulator that is activated in response to energy deprivation. Although there is relatively ample information on the biochemical characteristics of AMPK, not enough data exist on the in vivo function of the kinase. Here, using the Drosophila model system, we generated the first animal model with no AMPK activity and discovered physiological functions of the kinase. Surprisingly, AMPK-null mutants were lethal with severe abnormalities in cell polarity and mitosis, similar to those of lkb1-null mutants. Constitutive activation of AMPK restored many of the phenotypes of lkb1-null mutants, suggesting that AMPK mediates the polarity- and mitosis-controlling functions of the LKB1 serine/threonine kinase. Interestingly, the regulatory site of non-muscle myosin regulatory light chain (MRLC; also known as MLC2) was directly phosphorylated by AMPK. Moreover, the phosphomimetic mutant of MRLC rescued the AMPK-null defects in cell polarity and mitosis, suggesting MRLC is a critical downstream target of AMPK. Furthermore, the activation of AMPK by energy deprivation was sufficient to cause dramatic changes in cell shape, inducing complete polarization and brush border formation in the human LS174T cell line, through the phosphorylation of MRLC. Taken together, our results demonstrate that AMPK has highly conserved roles across metazoan species not only in the control of metabolism, but also in the regulation of cellular structures.
机译:AMP激活的蛋白激酶(AMPK,也称为SNF1A)已被初步研究为一种代谢调节剂,可响应能量剥夺而被激活。尽管有关AMPK的生化特性的信息相对较多,但有关激酶的体内功能的数据却不足。在这里,使用果蝇模型系统,我们生成了第一个没有AMPK活性的动物模型,并发现了该激酶的生理功能。出乎意料的是,AMPK-null突变体具有致命性,在细胞极性和有丝分裂方面具有严重异常,类似于lkb1-null突变体。 AMPK的组成性激活恢复了许多lkb1-null突变体的表型,表明AMPK介导了LKB1丝氨酸/苏氨酸激酶的极性和有丝分裂控制功能。有趣的是,非肌肉肌球蛋白调节轻链(MRLC;也称为MLC2)的调节位点被AMPK直接磷酸化。此外,MRLC的拟磷酸盐突变体挽救了细胞极性和有丝分裂中的AMPK缺失缺陷,表明MRLC是AMPK的关键下游靶标。此外,通过能量剥夺对AMPK的激活足以引起细胞形状的剧烈变化,通过MRLC的磷酸化诱导人LS174T细胞系中的完全极化和刷状边界形成。两者合计,我们的结果表明AMPK在后生动物物种中不仅在代谢控制方面,而且在细胞结构调节中都具有高度保守的作用。

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