Glycometabolome Team, Systems Glycobiology Research Group, RIKEN Advanced Science Institute, Wako, Saitama, Japan.
PLoS One. 2010 May 10;5(5):e10545. doi: 10.1371/journal.pone.0010545.
Peptide:N-glycanase (PNGase) is an enzyme which releases N-linked glycans from glycopeptides/glycoproteins. This enzyme plays a role in the ER-associated degradation (ERAD) pathway in yeast and mice, but the biological importance of this activity remains unknown.
In this study, we characterized the ortholog of cytoplasmic PNGases, PNGase-like (Pngl), in Drosophila melanogaster. Pngl was found to have a molecular weight of approximately 74K and was mainly localized in the cytosol. Pngl lacks a CXXC motif that is critical for enzymatic activity in other species and accordingly did not appear to possess PNGase activity, though it still retains carbohydrate-binding activity. We generated microdeletions in the Pngl locus in order to investigate the functional importance of this protein in vivo. Elimination of Pngl led to a serious developmental delay or arrest during the larval and pupal stages, and surviving mutant adult males and females were frequently sterile. Most importantly, these phenotypes were rescued by ubiquitous expression of Pngl, clearly indicating that those phenotypic consequences were indeed due to the lack of functional Pngl. Interestingly, a putative "catalytic-inactive" mutant could not rescue the growth-delay phenotype, indicating that a biochemical activity of this protein is important for its biological function.
Pngl was shown to be inevitable for the proper developmental transition and the biochemical properties other than deglycosylation activity is important for its biological function.
肽:N-糖基化酶(PNGase)是一种从糖肽/糖蛋白中释放 N-连接聚糖的酶。这种酶在酵母和小鼠的内质网相关降解(ERAD)途径中发挥作用,但这种活性的生物学重要性尚不清楚。
在这项研究中,我们鉴定了果蝇细胞质 PNGase 的同源物,PNGase 样(Pngl)。Pngl 的分子量约为 74K,主要定位于细胞质中。Pngl 缺乏对于其他物种酶活性至关重要的CXXC 基序,因此似乎不具有 PNGase 活性,尽管它仍然保留碳水化合物结合活性。我们在 Pngl 基因座中产生了微小缺失,以研究该蛋白在体内的功能重要性。消除 Pngl 导致幼虫和蛹期严重的发育延迟或停滞,并且存活的突变体雄性和雌性经常不育。最重要的是,Pngl 的普遍表达挽救了这些表型,这清楚地表明这些表型后果确实是由于缺乏功能性 Pngl 所致。有趣的是,一种假定的“催化失活”突变体不能挽救生长延迟表型,表明该蛋白的生化活性对于其生物学功能很重要。
Pngl 对于适当的发育转变是必不可少的,而除了去糖基化活性之外的生化特性对于其生物学功能很重要。