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CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism

机译:CRISPR / CAS9删除ORMDLS揭示了鞘脂代谢的复杂性

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摘要

The serine palmitoyltransferase (SPT) complex catalyzes the rate-limiting step in the de novo biosynthesis of ceramides, the precursors of sphingolipids. The mammalian ORMDL isoforms (ORMDL1-3) are negative regulators of SPT. However, the roles of individual ORMDL isoforms are unclear. Using siRNA against individual ORMDLs, only single siORMDL3 had modest effects on dihydroceramide and ceramide levels, whereas downregulation of all three ORMDLs induced more pronounced increases. With the CRISPR/Cas9-based genome-editing strategy, we established stable single ORMDL3 KO (ORMDL3-KO) and ORMDL1/2/3 triple-KO (ORMDL-TKO) cell lines to further understand the roles of ORMDL proteins in sphingolipid biosynthesis. While ORMDL3-KO modestly increased dihydroceramide and ceramide levels, ORMDL-TKO cells had dramatic increases in the accumulation of these sphingolipid precursors. SPT activity was increased only in ORMDL-TKO cells. In addition, ORMDL-TKO but not ORMDL3-KO dramatically increased levels of galactosylceramides, glucosylceramides, and lactosylceramides, the elevated N-acyl chain distributions of which broadly correlated with the increases in ceramide species. Surprisingly, although C16:0 is the major sphingomyelin species, it was only increased in ORMDL3-KO, whereas all other N-acyl chain sphingomyelin species were significantly increased in ORMDL-TKO cells. Analysis of sphingoid bases revealed that although sphingosine was only increased 2-fold in ORMDL-TKO cells, levels of dihydrosphingosine, dihydrosphingosine-1-phosphate, and sphingosine-1-phosphate were hugely increased in ORMDL-TKO cells and not in ORMDL3-KO cells. Thus, ORMDL proteins may have a complex, multifaceted role in the biosynthesis and regulation of cellular sphingolipids.
机译:丝氨酸棕榈酰基转移酶(SPT)复合物催化氨氨酰胺的Novo生物合成中的速率限制步骤,鞘脂的前体。哺乳动物ORMDL同种型(ORMDL1-3)是SPT的负调节剂。但是,个体ORMDL同种型的角色尚不清楚。使用siRNA对单个ORMDLS,只有单个SiormDL3对二氢杂物酰胺和神经酰胺水平具有适度的影响,而所有三种ORMDL的下调诱导更明显的增加。利用基于CRISPR / CAS9的基因组编辑策略,我们建立了稳定的单次ORMDL3 KO(ORMDL3-KO)和ORMDL1 / 2/3 TRIPLIP-KO(ORMDL-TKO)细胞系,以进一步了解ORMDL蛋白在鞘脂生物合成中的作用。虽然ORMDL3-KO适度增加的二氢杂杂胺和神经酰胺水平,但是在这些鞘脂前体的积累中具有显着增加。 SPT活性仅在ORMDL-TKO细胞中增加。此外,ORMDL-TKO但不是ORMDL3-KO显着增加了半乳糖基胺,葡糖基胺和乳糖基胺水平,其升高的N-酰基链分布与神经酰胺物种的增加宽相关。令人惊讶的是,虽然C16:0是主要的鞘氨酰胺物种,但在ORMDL3-KO中才增加,而在ORMDL-TKO细胞中,所有其他N-酰基链鞘氨酰胺物种明显增加。脊鞘碱的分析显示,虽然鞘氨醇仅在ORMDL-TKO细胞中升高2倍,但在ORMDL-TKO细胞中,二氢奥磷酸碱,二氢磷磷酸碱基,二氢磷酸氨基磷酸氨基和磷酸二磷酸盐和鞘氨醇-1-磷酸盐水平较大,而不是在ORMDL3-KO中增加细胞。因此,ORMDL蛋白质可以在生物合成和调节细胞鞘脂中具有复杂的多方面作用。

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