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Genome-wide RNAi Screen for Fat Regulatory Genes in C. elegans Identifies a Proteostasis-AMPK Axis Critical for Starvation Survival

机译:秀丽隐杆线虫中的脂肪调节基因的全基因组RNAi筛选确定了饥饿生存的关键性蛋白稳定-AMPK轴

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Organisms must execute metabolic defenses to survive nutrient deprivation. We performed a genome-wide RNAi screen in Caenorhabditis elegans to identify fat regulatory genes indispensable for starvation resistance. Here, we show that opposing proteostasis pathways are principal determinants of starvation survival. Reduced function of cytoplasmic aminoacyl tRNA synthetases (ARS genes) increases fat mass and extends starvation survival, whereas reduced proteasomal function reduces fat and starvation survival. These opposing pathways converge on AMP-activated protein kinase (AMPK) as the critical effector of starvation defenses. Extended starvation survival in ARS deficiency is dependent upon increased proteasome-mediated activation of AMPK. When the proteasome is inhibited, neither starvation nor ARS deficiency can fully activate AMPK, leading to greatly diminished starvation survival. Thus, activity of the proteasome and AMPK are mechanistically linked and highly correlated with starvation resistance. Conversely, aberrant activation of the proteostasis-AMPK axis during nutritional excess may have implications for obesity and cardiometabolic diseases.
机译:有机体必须执行新陈代谢防御措施,以维持营养缺乏。我们在秀丽隐杆线虫中进行了全基因组的RNAi筛选,以鉴定对于抗饥饿性必不可少的脂肪调节基因。在这里,我们表明相反的蛋白稳态途径是饥饿生存的主要决定因素。细胞质氨酰基tRNA合成酶(ARS基因)功能降低会增加脂肪量并延长饥饿存活期,而蛋白酶体功能降低会降低脂肪和饥饿存活期。这些相反的途径汇聚在AMP激活的蛋白激酶(AMPK)上,它是饥饿防御的关键效应器。 ARS缺乏症中饥饿的延长生存时间取决于蛋白酶体介导的AMPK激活增加。当蛋白酶体被抑制时,饥饿和ARS缺乏都不能完全激活AMPK,从而导致饥饿存活大大减少。因此,蛋白酶体和AMPK的活性是机械连接的,并且与抗饥饿性高度相关。相反,在营养过剩期间,蛋白质稳态-AMPK轴异常激活可能与肥胖和心脏代谢疾病有关。

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