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A Striking Quality Control Subcompartment in Saccharomyces cerevisiae: The Endoplasmic Reticulum-associated Compartment

机译:酿酒酵母中引人注目的质量控制小组:内质网相关的隔间

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摘要

The folding of nascent secretory and membrane proteins is monitored by the endoplasmic reticulum (ER) quality control system. Misfolded proteins are retained in the ER and can be removed by ER-associated degradation. As a model for the ER quality control of multispanning membrane proteins in yeast, we have been studying mutant forms of Ste6p. Here, we identify mislocalized mutant forms of Ste6p that induce the formation of, and localize to, prominent structures that are absent in normal cells. We have named these structures ER-associated compartments (ERACs), based on their juxtaposition to and connection with the ER, as observed by fluorescence and electron microscopy. ERACs comprise a network of tubulo-vesicular structures that seem to represent proliferated ER membranes. Resident ER lumenal and membrane proteins are present in ERACs in addition to their normal ER localization, suggesting there is no barrier for their entry into ERACs. However, the forms of Ste6p in ERACs are excluded from the ER and do not enter the secretory pathway; instead, they are ultimately targeted for ER-associated degradation. The presence of ERACs does not adversely affect secretory protein traffic through the ER and does not lead to induction of the unfolded protein response. We propose that ERACs may be holding sites to which misfolded membrane proteins are specifically diverted so as not to interfere with normal cellular functions. We discuss the likelihood that related ER membrane proliferations that form in response to certain other mutant or unassembled membrane proteins may be substantially similar to ERACs.
机译:新生内分泌和膜蛋白的折叠由内质网(ER)质量控制系统监控。错误折叠的蛋白质保留在ER中,并且可以通过ER相关的降解去除。作为用于酵母中跨膜蛋白ER质量控制的模型,我们一直在研究Ste6p的突变形式。在这里,我们确定Ste6p的定位错误的突变体形式,该突变体诱导正常细胞中不存在的突出结构的形成并定位在该结构中。我们将这些结构命名为ER相关隔室(ERAC),是基于它们与ER的并置和连接,如通过荧光和电子显微镜观察到的。 ERACs包含肾小管-囊泡结构网络,似乎代表了增生的ER膜。除了正常的ER定位外,ERAC中还存在驻留的ER内腔和膜蛋白,这表明它们进入ERACs没有障碍。但是,ERAC中Ste6p的形式不包括在ER中,并且不进入分泌途径。相反,它们最终针对的是与ER相关的降解。 ERACs的存在不会不利地影响通过ER的分泌蛋白运输,也不会导致未折叠的蛋白反应的诱导。我们建议,ERAC可能是错误折叠的膜蛋白被专门转移到的位置,以免干扰正常的细胞功能。我们讨论了响应某些其他突变或未组装的膜蛋白而形成的相关ER膜增殖可能与ERACs基本相似的可能性。

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