Genome-wide RNAi screening identifies protein damage as a regulator of osmoprotective gene expression

渗透压 生物 细胞生物学 RNA干扰 基因表达 渗透性休克 秀丽隐杆线虫 基因 基因表达调控 未折叠蛋白反应 蛋白质稳态 生物化学 内质网 核糖核酸
作者
Todd Lamitina,Chunyi George Huang,Kevin Strange
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [Proceedings of the National Academy of Sciences]
卷期号:103 (32): 12173-12178 被引量:186
标识
DOI:10.1073/pnas.0602987103
摘要

The detection, stabilization, and repair of stress-induced damage are essential requirements for cellular life. All cells respond to osmotic stress-induced water loss with increased expression of genes that mediate accumulation of organic osmolytes, solutes that function as chemical chaperones and restore osmotic homeostasis. The signals and signaling mechanisms that regulate osmoprotective gene expression in animal cells are poorly understood. Here, we show that gpdh-1 and gpdh-2 , genes that mediate the accumulation of the organic osmolyte glycerol, are essential for survival of the nematode Caenorhabditis elegans during osmotic stress. Expression of GFP driven by the gpdh-1 promoter ( P gpdh-1 :: GFP ) is detected only during hypertonic stress but is not induced by other stressors. Using P gpdh-1 :: GFP expression as a phenotype, we screened ≈16,000 genes by RNAi feeding and identified 122 that cause constitutive activation of gpdh-1 expression and glycerol accumulation. Many of these genes function to regulate protein translation and cotranslational protein folding and to target and degrade denatured proteins, suggesting that the accumulation of misfolded proteins functions as a signal to activate osmoprotective gene expression and organic osmolyte accumulation in animal cells. Consistent with this hypothesis, 73% of these protein-homeostasis genes have been shown to slow age-dependent protein aggregation in C. elegans . Because diverse environmental stressors and numerous disease states result in protein misfolding, mechanisms must exist that discriminate between osmotically induced and other forms of stress-induced protein damage. Our findings provide a foundation for understanding how these damage-selectivity mechanisms function.
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