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Silencing of enzymes involved in ceramide biosynthesis causes distinct global alterations of lipid homeostasis and gene expression

机译:涉及神经酰胺生物合成的酶的沉默导致脂质稳态和基因表达的明显全球变化

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摘要

Dysregulation of ceramide synthesis has been associated with metabolic disorders such as atherosclerosis and diabetes. We examined the changes in lipid homeostasis and gene expression in Huh7 hepatocytes when the synthesis of ceramide is perturbed by knocking down serine pal mitoyltransferase subunits 1, 2, and 3 (SPTLC123) or dihydroceramide desaturase 1 (DEGS1). Although knocking down all SPTLC subunits is necessary to reduce total ceramides significantly, depleting DEGS1 is sufficient to produce a similar outcome. Lipidomic analysis of distribution and speciation of multiple lipid classes indicates an increase in phospholipids in SPTLC123-silenced cells, whereas DEGS1 depletion leads to the accumulation of sphingolipid intermediates, free fatty acids, and diacylglycerol. When cer amide synthesis is disrupted, the transcriptional profiles indicate inhibition in biosynthetic processes, downregulation of genes involved in general endomembrane traffi cking, and upregulation of endocytosis and endosomal recycling. SPTLC123 silencing strongly affects the expression of genes involved with lipid metabolism. Changes in amino acid, sugar, and nucleotide metabolism, as well as vesicle trafficking between organelles, are more prominent in DEGS1-silenced cells. These studies are the first to provide a direct and comprehensive understanding at the lipidomic and transcriptomic levels of how Huh7 hepatocytes respond to changes in the inhibition of ceramide synthesis.
机译:神经酰胺合成失调与代谢紊乱(如动脉粥样硬化和糖尿病)有关。我们通过敲低丝氨酸pal mitoyltransferase亚基1、2和3(SPTLC123)或二氢神经酰胺去饱和酶1(DEGS1)干扰了神经酰胺的合成时,我们检查了Huh7肝细胞脂质稳态和基因表达的变化。尽管必须击倒所有SPTLC亚基才能显着减少总神经酰胺,但消耗DEGS1足以产生相似的结果。对多种脂质类别的分布和形态的脂质组学分析表明,SPTLC123沉默的细胞中磷脂的增加,而DEGS1的消耗导致鞘脂中间体,游离脂肪酸和二酰基甘油的积累。当神经酰胺的合成被破坏时,转录图谱表明其在生物合成过程中受到抑制,参与一般的内膜运输的基因的下调,以及内吞作用和内体再循环的上调。 SPTLC123沉默会严重影响脂质代谢相关基因的表达。在DEGS1沉默的细胞中,氨基酸,糖和核苷酸代谢的变化以及细胞器之间的囊泡运输更为明显。这些研究首次在脂质组和转录组水平上提供了对Huh7肝细胞如何响应神经酰胺合成抑制变化的直接和全面的了解。

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