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Mammalian ER mannosidase I resides in quality control vesicles, where it encounters its glycoprotein substrates

机译:哺乳动物ER甘露糖苷酶I驻留在质控囊泡中,在那里遇到糖蛋白底物

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Endoplasmic reticulum alpha 1,2 mannosidase I (ERManI), a central component of ER quality control and ER-associated degradation (ERAD), acts as a timer enzyme, modifying N-linked sugar chains of glycoproteins with time. This process halts glycoprotein folding attempts when necessary and targets terminally misfolded glycoproteins to ERAD. Despite the importance of ERManI in maintenance of glycoprotein quality control, fundamental questions regarding this enzyme remain controversial. One such question is the subcellular localization of ERManI, which has been suggested to localize to the ER membrane, the ER-derived quality control compartment (ERQC), and, surprisingly, recently to the Golgi apparatus. To try to clarify this controversy, we applied a series of approaches that indicate that ERManI is located, at the steady state, in quality control vesicles (QCVs) to which ERAD substrates are transported and in which they interact with the enzyme. Both endogenous and exogenously expressed ERManI migrate at an ER-like density on iodixanol gradients, suggesting that the QCVs are derived from the ER. The QCVs are highly mobile, displaying dynamics that are dependent on microtubules and COP-II but not on COP-I vesicle machinery. Under ER stress conditions, the QCVs converge in a juxtanuclear region, at the ERQC, as previously reported. Our results also suggest that ERManI is turned over by an active autophagic process. Of importance, we found that membrane disturbance, as is common in immunofluorescence methods, leads to an artificial appearance of ERManI in a Golgi pattern.
机译:内质网α1,2甘露糖苷酶I(ERManI)是ER质量控制和与ER相关的降解(ERAD)的重要组成部分,它起着计时器酶的作用,随着时间改变糖蛋白的N-连接糖链。该过程在必要时停止糖蛋白折叠尝试,并将末端错误折叠的糖蛋白靶向ERAD。尽管ERManI在维持糖蛋白质量控制中非常重要,但有关该酶的基本问题仍存在争议。一个这样的问题是ERManI的亚细胞定位,已被建议定位于ER膜,ER衍生的质量控制区室(ERQC),并且最近还令人惊讶地定位于高尔基体。为了试图澄清这一争议,我们应用了一系列方法来表明ERManI处于稳态,处于ERAD底物转运至质控囊泡(QCV)并与酶相互作用的状态。内源性和外源性表达的ERManI都在碘克沙醇梯度上以类似ER的密度迁移,这表明QCV源自ER。 QCV具有很高的移动性,显示的动力学取决于微管和COP-II,但不取决于COP-I囊泡机械。如先前报道,在内质网应激条件下,QCVs在内质网在ERQC会聚。我们的结果还表明,ERManI被主动的自噬过程所翻转。重要的是,我们发现膜紊乱(在免疫荧光方法中很常见)会导致以高尔基体模式人工出现ERManI。

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