Kruszewska J S, Saloheimo M, Migdalski A, Orlean P, Penttilä M, Palamarczyk G
Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Pawinskiego 5a, 02 106 Warsaw, Poland.
Glycobiology. 2000 Oct;10(10):983-91. doi: 10.1093/glycob/10.10.983.
Dolichol phosphate mannose (DPM) synthase activity, which is required in N:-glycosylation, O-mannosylation, and glycosylphosphatidylinositol membrane anchoring of protein, has been postulated to regulate the Trichoderma reesei secretory pathway. We have cloned a T.reesei cDNA that encodes a 243 amino acid protein whose amino acid sequence shows 67% and 65% identity, respectively, to the Schizosaccharomyces pombe and human DPM synthases, and which lacks the COOH-terminal hydrophobic domain characteristic of the Saccharomyces cerevisiae class of synthase. The Trichoderma dpm1 (Trdpm1) gene complements a lethal null mutation in the S.pombe dpm1(+) gene, but neither restores viability of a S.cerevisiae dpm1-disruptant nor complements the temperature-sensitivity of the S. cerevisiae dpm1-6 mutant. The T.reesei DPM synthase is therefore a member of the "human" class of enzyme. Overexpression of Trdpm1 in a dpm1(+)::his7/dpm1(+) S.pombe diploid resulted in a 4-fold increase in specific DPM synthase activity. However, neither the wild type T. reesei DPM synthase, nor a chimera consisting of this protein and the hydrophobic COOH terminus of the S.cerevisiae DPM synthase, complemented an S.cerevisiae dpm1 null mutant or gave active enzyme when expressed in E.coli. The level of the Trdpm1 mRNA in T.reesei QM9414 strain was dependent on the composition of the culture medium. Expression levels of Trdpm1 were directly correlated with the protein secretory capacity of the fungus.
磷酸多萜醇甘露糖(DPM)合成酶活性在蛋白质的N-糖基化、O-甘露糖基化和糖基磷脂酰肌醇膜锚定过程中是必需的,据推测它可调节里氏木霉的分泌途径。我们克隆了一个里氏木霉cDNA,它编码一个243个氨基酸的蛋白质,其氨基酸序列与粟酒裂殖酵母和人类的DPM合成酶分别有67%和65%的同一性,并且缺乏酿酒酵母类合成酶特有的COOH末端疏水结构域。里氏木霉dpm1(Trdpm1)基因可弥补粟酒裂殖酵母dpm1(+)基因的致死性无效突变,但既不能恢复酿酒酵母dpm1缺失突变体的活力,也不能弥补酿酒酵母dpm1-6突变体的温度敏感性。因此,里氏木霉DPM合成酶是“人类”类酶的成员。在dpm1(+)::his7/dpm1(+)粟酒裂殖酵母二倍体中过表达Trdpm1导致特定DPM合成酶活性增加4倍。然而,野生型里氏木霉DPM合成酶,以及由该蛋白质和酿酒酵母DPM合成酶的疏水COOH末端组成的嵌合体,都不能弥补酿酒酵母dpm1无效突变体,也不能在大肠杆菌中表达时产生活性酶。里氏木霉QM9414菌株中Trdpm1 mRNA的水平取决于培养基的组成。Trdpm1的表达水平与真菌的蛋白质分泌能力直接相关。