He Yi, Sugiura Reiko, Ma Yan, Kita Ayako, Deng Lu, Takegawa Kaoru, Matsuoka Ken, Shuntoh Hisato, Kuno Takayoshi
Division of Molecular Pharmacology and Pharmacogenomics, Department of Genome Sciences, Kobe University Graduate School of Medicine, Kusunoki-cho, Chuo-ku, Kobe 650-0017, Japan.
Genes Cells. 2006 Mar;11(3):207-21. doi: 10.1111/j.1365-2443.2006.00935.x.
We have previously isolated ypt3-i5 mutant and showed that Ypt3 GTPase functions in the fission yeast secretory pathway. Here, the same genetic screen led to the isolation of ryh1-i6, a mutant allele of the ryh1+ gene encoding a homolog of Rab6. The ryh1-i6 mutant showed phenotypes that support its role in retrograde traffic from endosome to the Golgi. Interestingly, ryh1+ gene deletion was synthetically lethal with ypt3-i5 mutation. Consistently, the over-expression of the GDP-conformational mutant, Ryh1T25 N, inhibited the growth of ypt3-i5 mutant but had no effect on that of wild-type cells. Furthermore, the over-expression of the Ryh1T25N mutant inhibited the acid phosphatase glycosylation and exacerbated the cell wall integrity of ypt3-i5 mutant, but had no effect on those of wild-type cells. GFP-Ryh1 and GFP-Ypt3 both localized at the Golgi/endosome, but showed distinct subcellular localizations. The localization of GFP-Ryh1 in ypt3-i5 mutant and that of GFP-Ypt3 in ryh1-i6 mutant were distinct from those in wild-type cells. In addition, Ryh1 as well as Ypt3 were shown to be involved in acid phosphatase secretion. These results suggest that Ryh1 is involved in the secretory pathway and may have a potential overlapping function with Ypt3 in addition to its role in recycling.
我们之前分离出了ypt3-i5突变体,并表明Ypt3 GTP酶在裂殖酵母分泌途径中发挥作用。在此,相同的遗传筛选导致了ryh1-i6的分离,ryh1-i6是ryh1+基因的一个突变等位基因,该基因编码Rab6的一个同源物。ryh1-i6突变体表现出的表型支持其在内体到高尔基体的逆行运输中的作用。有趣的是,ryh1+基因缺失与ypt3-i5突变是合成致死的。一致地,GDP构象突变体Ryh1T25 N的过表达抑制了ypt3-i5突变体的生长,但对野生型细胞的生长没有影响。此外,Ryh1T25N突变体的过表达抑制了酸性磷酸酶的糖基化,并加剧了ypt3-i5突变体的细胞壁完整性,但对野生型细胞没有影响。GFP-Ryh1和GFP-Ypt3都定位于高尔基体/内体,但显示出不同的亚细胞定位。GFP-Ryh1在ypt3-i5突变体中的定位以及GFP-Ypt3在ryh1-i6突变体中的定位与野生型细胞中的不同。此外,Ryh1以及Ypt3都被证明参与酸性磷酸酶的分泌。这些结果表明,Ryh1参与分泌途径,并且除了其在循环中的作用外,可能与Ypt3具有潜在的重叠功能。