Brown C Randell, McCann Jameson A, Hung Graham Guo-Chiuan, Elco Christopher P, Chiang Hui-Ling
Department of Cellular and Molecular Physiology, Pennsylvania State College of Medicine, 500 University Drive, Hershey, PA 17033, USA.
J Cell Sci. 2002 Feb 1;115(Pt 3):655-66. doi: 10.1242/jcs.115.3.655.
Fructose-1,6-bisphosphatase (FBPase), an important enzyme in the gluconeogenic pathway in Saccharomyces cerevisiae, is expressed when cells are grown in media containing a poor carbon source. Following glucose replenishment, FBPase is targeted from the cytosol to intermediate Vid (vacuole import and degradation) vesicles and then to the vacuole for degradation. Recently, several vid mutants that are unable to degrade FBPase in response to glucose were identified. Here, we present VID22, a novel gene involved in FBPase degradation. VID22 encodes a glycosylated integral membrane protein that localizes to the plasma membrane. Newly synthesized Vid22p was found in the cytoplasm and then targeted to the plasma membrane independent of the classical secretory pathway. A null mutation of VID22 failed to degrade FBPase following a glucose shift and accumulated FBPase in the cytosol. Furthermore, the majority of FBPase remained in a proteinase K sensitive compartment in the Deltavid22 mutant, implying that VID22 is involved in FBPase transport from the cytosol to Vid vesicles. By contrast, starvation-induced autophagy and peroxisome degradation were not impaired in the Deltavid22 mutant. This strain also exhibited the proper processing of carboxypeptidase Y and aminopeptidase I in the vacuole. Therefore, Vid22p appears to play a specific role in the FBPase trafficking pathway.
果糖-1,6-二磷酸酶(FBPase)是酿酒酵母糖异生途径中的一种重要酶,当细胞在含有不良碳源的培养基中生长时会表达。在补充葡萄糖后,FBPase从细胞质被靶向运输到中间的Vid(液泡导入和降解)囊泡,然后再运输到液泡进行降解。最近,鉴定出了几种无法响应葡萄糖而降解FBPase的vid突变体。在此,我们介绍VID22,一个参与FBPase降解的新基因。VID22编码一种糖基化的整合膜蛋白,定位于质膜。新合成的Vid22p在细胞质中被发现,然后独立于经典分泌途径靶向运输到质膜。VID22的无效突变在葡萄糖转换后无法降解FBPase,并使FBPase在细胞质中积累。此外,在Deltavid22突变体中,大多数FBPase保留在对蛋白酶K敏感的区室中,这意味着VID22参与FBPase从细胞质到Vid囊泡的运输。相比之下,饥饿诱导的自噬和过氧化物酶体降解在Deltavid22突变体中并未受损。该菌株在液泡中也表现出羧肽酶Y和氨肽酶I的正常加工过程。因此,Vid22p似乎在FBPase运输途径中发挥特定作用。