Molinari Maurizio, Galli Carmela, Vanoni Omar, Arnold Stacey M, Kaufman Randal J
Institute for Research in Biomedicine, CH-6500 Bellinzona, Switzerland.
Mol Cell. 2005 Nov 23;20(4):503-12. doi: 10.1016/j.molcel.2005.09.027.
The UDP-glucose:glycoprotein glucosyltransferase (UGT) is a central player of glycoprotein quality control in the endoplasmic reticulum (ER). UGT reglucosylation of nonnative glycopolypeptides prevents their release from the calnexin cycle and secretion. Here, we compared the fate of a glycoprotein with a reversible, temperature-dependent folding defect in cells with and without UGT1. Upon persistent misfolding, tsO45 G was slowly released from calnexin and entered a second level of retention-based ER quality control by forming BiP/GRP78-associated disulfide-bonded aggregates. This correlated with loss in the ability to correct misfolding. Deletion of UGT1 did not affect the stringency of ER quality control. Rather, it accelerated release from calnexin and transfer to the second ER quality control level, but it did so after an unexpectedly long lag, showing that cycling in the calnexin chaperone system is not frenetic, as claimed by existing models, and is fully activated only upon persistent glycoprotein misfolding.
UDP-葡萄糖:糖蛋白葡糖基转移酶(UGT)是内质网(ER)中糖蛋白质量控制的核心参与者。非天然糖多肽的UGT再糖基化可防止其从钙联蛋白循环中释放和分泌。在这里,我们比较了在有和没有UGT1的细胞中具有可逆的、温度依赖性折叠缺陷的糖蛋白的命运。持续错误折叠后,tsO45 G从钙联蛋白中缓慢释放,并通过形成与BiP/GRP78相关的二硫键结合聚集体进入基于保留的内质网质量控制的第二个水平。这与纠正错误折叠能力的丧失相关。UGT1的缺失不影响内质网质量控制的严格性。相反,它加速了从钙联蛋白的释放并转移到内质网质量控制的第二个水平,但这是在出乎意料的长时间滞后之后发生的,表明钙联蛋白伴侣系统中的循环并不像现有模型所声称的那样频繁,并且仅在糖蛋白持续错误折叠时才完全激活。