Heier Christoph, Taschler Ulrike, Rengachari Srinivasan, Oberer Monika, Wolinski Heimo, Natter Klaus, Kohlwein Sepp D, Leber Regina, Zimmermann Robert
Institute of Molecular Biosciences, University of Graz, Humboldtstrasse 50, A-8010 Graz, Austria.
Biochim Biophys Acta. 2010 Sep;1801(9):1063-71. doi: 10.1016/j.bbalip.2010.06.001. Epub 2010 Jun 8.
Monoacylglycerols (MAGs) are short-lived intermediates of glycerolipid metabolism. Specific molecular species, such as 2-arachidonoylglycerol, which is a potent activator of cannabinoid receptors, may also function as lipid signaling molecules. In mammals, enzymes hydrolyzing MAG to glycerol and fatty acids, resembling the final step in lipolysis, or esterifying MAG to diacylglycerol, are well known; however, despite the high level of conservation of lipolysis, the corresponding activities in yeast have not been characterized yet. Here we provide evidence that the protein Yju3p functions as a potent MAG hydrolase in yeast. Cellular MAG hydrolase activity was decreased by more than 90% in extracts of Yju3p-deficient cells, indicating that Yju3p accounts for the vast majority of this activity in yeast. Loss of this activity was restored by heterologous expression of murine monoglyceride lipase (MGL). Since yju3Delta mutants accumulated MAG in vivo only at very low concentrations, we considered the possibility that MAGs are re-esterified into DAG by acyltransferases. Indeed, cellular MAG levels were further increased in mutant cells lacking Yju3p and Dga1p or Lro1p acyltransferase activities. In conclusion, our studies suggest that catabolic and anabolic reactions affect cellular MAG levels. Yju3p is the functional orthologue of mammalian MGL and is required for efficient degradation of MAG in yeast.
单酰甘油(MAGs)是甘油脂质代谢的短暂中间体。特定的分子种类,如2-花生四烯酸甘油酯,它是大麻素受体的有效激活剂,也可能作为脂质信号分子发挥作用。在哺乳动物中,将MAG水解为甘油和脂肪酸的酶(类似于脂解的最后一步),或者将MAG酯化生成二酰甘油的酶,是众所周知的;然而,尽管脂解过程具有高度保守性,但酵母中相应的活性尚未得到表征。在这里,我们提供证据表明蛋白质Yju3p在酵母中作为一种有效的MAG水解酶发挥作用。在缺乏Yju3p的细胞提取物中,细胞MAG水解酶活性降低了90%以上,这表明Yju3p在酵母中占这种活性的绝大部分。通过小鼠单甘油酯脂肪酶(MGL)的异源表达恢复了这种活性的丧失。由于yju3Δ突变体在体内仅以非常低的浓度积累MAG,我们考虑了MAG被酰基转移酶重新酯化为DAG的可能性。事实上,在缺乏Yju3p和Dga1p或Lro1p酰基转移酶活性的突变细胞中,细胞MAG水平进一步升高。总之,我们的研究表明分解代谢和合成代谢反应会影响细胞MAG水平。Yju3p是哺乳动物MGL的功能同源物,是酵母中MAG有效降解所必需的。