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缺乏ARV1基因的酵母细胞在鞘脂代谢方面存在缺陷。由人类ARV1进行互补。

Yeast cells lacking the ARV1 gene harbor defects in sphingolipid metabolism. Complementation by human ARV1.

作者信息

Swain Evelyn, Stukey Joseph, McDonough Virginia, Germann Melody, Liu Ying, Sturley Stephen L, Nickels Joseph T

机构信息

Department of Biochemistry, MCP Hahnemann University, Philadelphia, Pennsylvania 19102, USA.

出版信息

J Biol Chem. 2002 Sep 27;277(39):36152-60. doi: 10.1074/jbc.M206624200. Epub 2002 Jul 26.

Abstract

arv1Delta mutant cells have an altered sterol distribution within cell membranes (Tinkelenberg, A.H., Liu, Y., Alcantara, F., Khan, S., Guo, Z., Bard, M., and Sturley, S. L. (2000) J. Biol. Chem. 275, 40667-40670), and thus it has been suggested that Arv1p may be involved in the trafficking of sterol in the yeast Saccharomyces cerevisiae and also in humans. Here we present data showing that arv1Delta mutants also harbor defects in sphingolipid metabolism. [(3)H]inositol and [(3)H]dihydrosphingosine radiolabeling studies demonstrated that mutant cells had reduced rates of biosynthesis and lower steady-state levels of complex sphingolipids while accumulating certain hydroxylated ceramide species. Phospholipid radiolabeling studies showed that arv1Delta cells harbored defects in the rates of biosynthesis and steady-state levels of phosphatidylcholine, phosphatidylethanolamine, phosphatidylserine, and phosphatidylglycerol. Neutral lipid radiolabeling studies indicated that the rate of biosynthesis and steady-state levels of sterol ester were increased in arv1Delta cells. Moreover, these same studies demonstrated that arv1Delta cells had decreased rates of biosynthesis and steady-state levels of total fatty acid and fatty acid alcohols. Gas chromatography/mass spectrometry analyses examining different fatty acid species showed that arv1Delta cells had decreased levels of C18:1 fatty acid. Additional gas chromatography/mass spectrometry analyses determining the levels of various molecular sterol species in arv1Delta cells showed that mutant cells accumulated early sterol intermediates. Using fluorescence microscopy we found that GFP-Arv1p localizes to the endoplasmic reticulum and Golgi. Interestingly, the heterologous expression of the human ARV1 cDNA suppressed the sphingolipid metabolic defects of arv1Delta cells. We hypothesize that in eukaryotic cells, Arv1p functions in the sphingolipid metabolic pathway perhaps as a transporter of ceramides between the endoplasmic reticulum and Golgi.

摘要

arv1Delta突变细胞在细胞膜内的甾醇分布发生改变(廷克伦伯格,A.H.,刘,Y.,阿尔坎塔拉,F.,汗,S.,郭,Z.,巴德,M.,和斯特利,S.L.(2000年)《生物化学杂志》275卷,40667 - 40670页),因此有人提出Arv1p可能参与酿酒酵母以及人类中甾醇的运输。在此我们展示的数据表明,arv1Delta突变体在鞘脂代谢方面也存在缺陷。[³H]肌醇和[³H]二氢鞘氨醇放射性标记研究表明,突变细胞的生物合成速率降低,复合鞘脂的稳态水平较低,同时积累了某些羟基化神经酰胺种类。磷脂放射性标记研究表明,arv1Delta细胞在磷脂酰胆碱、磷脂酰乙醇胺、磷脂酰丝氨酸和磷脂酰甘油的生物合成速率和稳态水平方面存在缺陷。中性脂质放射性标记研究表明,arv1Delta细胞中甾醇酯的生物合成速率和稳态水平增加。此外,这些相同的研究表明,arv1Delta细胞的总脂肪酸和脂肪酸醇的生物合成速率和稳态水平降低。气相色谱/质谱分析检测不同脂肪酸种类表明,arv1Delta细胞中C18:1脂肪酸水平降低。进一步的气相色谱/质谱分析确定arv1Delta细胞中各种分子甾醇种类的水平表明,突变细胞积累了早期甾醇中间体。使用荧光显微镜我们发现,GFP - Arv1p定位于内质网和高尔基体。有趣的是,人ARV1 cDNA的异源表达抑制了arv1Delta细胞的鞘脂代谢缺陷。我们推测,在真核细胞中,Arv1p可能在鞘脂代谢途径中发挥作用,也许作为内质网和高尔基体之间神经酰胺的转运体。

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