Hirayama Hiroto, Fujita Morihisa, Yoko-o Takehiko, Jigami Yoshifumi
Research Institute for Cell Engineering, National Institute of Advanced Industrial Science and Technology, Tsukuba, Ibaraki, Japan.
J Biochem. 2008 Apr;143(4):555-67. doi: 10.1093/jb/mvm249. Epub 2008 Jan 7.
In Saccharomyces cerevisiae, protein O-mannosylation, which is executed by protein O-mannosyltransferases, is essential for a variety of biological processes as well as for conferring solubility to misfolded proteins. To determine if O-mannosylation plays an essential role in endoplasmic reticulum-associated degradation (ERAD) of misfolded proteins, we used a model misfolded protein, Gas1p. The O-mannose content of Gas1p, which is transferred by protein O-mannosyltransferases, was higher than that of Gas1p. Both Pmt1p and Pmt2p, which do not transfer O-mannose to correctly folded Gas1p, participated in the O-mannosylation of Gas1p. Furthermore, in a pmt1 Delta pmt2 Delta double-mutant background, degradation of Gas1p is altered from a primarily proteasome dependent to a vacuolar protease-dependent pathway. This process is in a manner dependent on a Golgi-to-endosome sorting function of the VPS30 complex II. Collectively, our data suggest that O-mannosylation plays an important role for proteasome-dependent degradation of Gas1p via the ERAD pathway and when O-mannosylation is insufficient, Gas1p is degraded in the vacuole. Thus, we propose that O-mannosylation by Pmt1p and Pmt2p might be a key step in the targeting of some misfolded proteins for degradation via the proteasome-dependent ERAD pathway.
在酿酒酵母中,由蛋白质O-甘露糖基转移酶执行的蛋白质O-甘露糖基化对于多种生物学过程以及赋予错误折叠蛋白溶解性至关重要。为了确定O-甘露糖基化在错误折叠蛋白的内质网相关降解(ERAD)中是否起关键作用,我们使用了一种错误折叠蛋白模型Gas1p。由蛋白质O-甘露糖基转移酶转移的Gas1p的O-甘露糖含量高于Gas1p。Pmt1p和Pmt2p这两种酶都不会将O-甘露糖转移到正确折叠的Gas1p上,但它们都参与了Gas1p的O-甘露糖基化。此外,在pmt1Δpmt2Δ双突变背景下,Gas1p的降解途径从主要依赖蛋白酶体转变为依赖液泡蛋白酶。这个过程依赖于VPS30复合物II的高尔基体到内体的分选功能。总体而言,我们的数据表明,O-甘露糖基化通过ERAD途径在Gas1p的蛋白酶体依赖性降解中起重要作用,当O-甘露糖基化不足时,Gas1p在液泡中降解。因此,我们提出Pmt1p和Pmt2p介导的O-甘露糖基化可能是一些错误折叠蛋白通过蛋白酶体依赖性ERAD途径进行降解靶向的关键步骤。