Takegawa Kaoru, Tokudomi Sanae, Bhuiyan M Shah Alam, Tabuchi Mitsuaki, Fujita Yasuko, Iwaki Tomoko, Utsumi Shigeru, Tanaka Naotaka
Department of Life Sciences, Faculty of Agriculture, Kagawa University, Miki-cho, Kagawa 761-0795, Japan.
Curr Genet. 2003 Feb;42(5):252-9. doi: 10.1007/s00294-002-0357-0. Epub 2002 Dec 14.
To investigate the intracellular transport mechanism of the vacuolar carboxypeptidase of Schizosaccharomyces pombe (SpCPY), SpCPY was expressed in Saccharomyces cerevisiae and its biosynthesis and sorting were examined. When Sac. cerevisiae prc1Delta, devoid of intrinsic (Sc) CPY activity, was transformed with a plasmid carrying the Sch. pombe cpy1(+) gene, CPY activity was restored. Pulse-chase experiments revealed that SpCPY is initially synthesized in a pro-precursor form and then converted to a heterodimer, the mature form, in Sac. cerevisiae cells. SpCPY was not processed into intermediate or mature forms in pep4 mutant cells, indicating that SpCPY was proteolytically cleaved in a PEP4-dependent manner in Sac. cerevisiae. Several vps mutants, which are defective in vacuolar protein-sorting, exhibited a defect in the maturation of SpCPY. Moreover, the maturation of SpCPY was severely inhibited in a vps10 strain, although the pro- segment of SpCPY does not contain a QRPL-like sequence, which is the putative targeting signal of ScCPY. When SpCPY was expressed in a wild-type strain, more than 90% of ScCPY was normally sorted to the vacuole, indicating that SpCPY does not compete with ScCPY for vacuolar sorting. In contrast, expression of SpCPY resulted in a missorting of a ScCPY-invertase fusion protein to the cell surface. These results suggested that there are two different binding sites for SpCPY and ScCPY on Vps10p and that the binding of SpCPY to Vps10p interferes with the binding of a ScCPY-invertase fusion protein.
为了研究粟酒裂殖酵母液泡羧肽酶(SpCPY)的细胞内运输机制,将SpCPY在酿酒酵母中表达,并检测其生物合成和分选过程。当缺乏内在(Sc)CPY活性的酿酒酵母prc1Δ用携带粟酒裂殖酵母cpy1(+)基因的质粒转化时,CPY活性得以恢复。脉冲追踪实验表明,SpCPY最初以前体-前体形式合成,然后在酿酒酵母细胞中转化为异二聚体,即成熟形式。SpCPY在pep4突变细胞中未加工成中间形式或成熟形式,这表明SpCPY在酿酒酵母中以PEP4依赖的方式进行蛋白水解切割。几个在液泡蛋白分选方面有缺陷的vps突变体在SpCPY的成熟过程中表现出缺陷。此外,尽管SpCPY的前体片段不包含QRPL样序列(ScCPY的假定靶向信号),但在vps10菌株中SpCPY的成熟受到严重抑制。当SpCPY在野生型菌株中表达时,超过90%的ScCPY正常分选到液泡中,这表明SpCPY在液泡分选方面不与ScCPY竞争。相反,SpCPY的表达导致ScCPY-转化酶融合蛋白错误分选到细胞表面。这些结果表明,Vps10p上存在两个不同的SpCPY和ScCPY结合位点,并且SpCPY与Vps10p的结合会干扰ScCPY-转化酶融合蛋白的结合。