Sawai H, Okamoto Y, Luberto C, Mao C, Bielawska A, Domae N, Hannun Y A
Department of Biochemistry and Molecular Biology and the Ralph H. Johnson Veterans Administration Hospital and the Department of Medicine, Medical University of South Carolina, Charleston 29425, USA.
J Biol Chem. 2000 Dec 15;275(50):39793-8. doi: 10.1074/jbc.M007721200.
Sphingolipids have emerged as novel bioactive mediators in eukaryotic cells including yeast. It has been proposed that sphingomyelin (SM) hydrolysis and the concomitant generation of ceramide are involved in various stress responses in mammalian cells. The yeast Saccharomyces cerevisiae has inositol phosphosphingolipids (IPS) instead of SM and glycolipids, and synthesis of IPS is indispensable to its growth. Although the genes responsible for the synthesis of IPS have been identified, the gene(s) for the degradation of IPS has not been reported. Here we show that ISC1 (YER019w), which has homology to bacterial neutral sphingomyelinase (SMase), encodes IPS phospholipase C (IPS-PLC). First, we observed that overexpression of ISC1 greatly increased neutral SMase activity, and this activity was dependent on the presence of phosphatidylserine. Cells deleted in ISC1 demonstrated negligible neutral SMase activity. Because yeast cells have IPS instead of SM, we investigated whether IPS are the physiologic substrates of this enzyme. Lysates of ISC1-overexpressing cells demonstrated very high PLC activities on IPS. Deletion of ISC1 eliminated endogenous IPS-PLC activities. Labeling yeast cells with [(3)H]dihydrosphingosine showed that IPS were increased in the deletion mutant cells. This study identifies the first enzyme involved in catabolism of complex sphingolipids in S. cerevisiae.
鞘脂已成为包括酵母在内的真核细胞中的新型生物活性介质。有人提出,鞘磷脂(SM)水解以及伴随产生的神经酰胺参与哺乳动物细胞的各种应激反应。酿酒酵母具有肌醇磷酸鞘脂(IPS)而非SM和糖脂,并且IPS的合成对其生长不可或缺。尽管已经鉴定出负责IPS合成的基因,但尚未报道负责IPS降解的基因。在这里,我们表明与细菌中性鞘磷脂酶(SMase)具有同源性的ISC1(YER019w)编码IPS磷脂酶C(IPS-PLC)。首先,我们观察到ISC1的过表达极大地增加了中性SMase活性,并且这种活性依赖于磷脂酰丝氨酸的存在。ISC1缺失的细胞显示出可忽略不计的中性SMase活性。由于酵母细胞具有IPS而非SM,我们研究了IPS是否是这种酶的生理底物。ISC1过表达细胞的裂解物在IPS上显示出非常高的PLC活性。ISC1的缺失消除了内源性IPS-PLC活性。用[(3)H]二氢鞘氨醇标记酵母细胞表明,缺失突变细胞中的IPS增加。这项研究确定了酿酒酵母中第一种参与复杂鞘脂分解代谢的酶。