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Real-Time Redox Measurements during Endoplasmic Reticulum Stress Reveal Interlinked Protein Folding Functions

机译:内质网应激过程中的实时氧化还原测量揭示了相互关联的蛋白质折叠功能

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Disruption of protein folding in the endoplasmic reticulum (ER) causes unfolded proteins to accumulate, triggering the unfolded protein response (UPR). UPR outputs in turn decrease ER unfolded proteins to close a negative feedback loop. However, because it is infeasible to directly measure the concentration of unfolded proteins in vivo, cells are generically described as experiencing "ER stress'' whenever the UPR is active. Because ER redox potential is optimized for oxidative protein folding, we reasoned that measureable redox changes should accompany unfolded protein accumulation. To test this concept, we employed fluorescent protein reporters to dynamically measure ER redox status and UPR activity in single cells. Using these tools, we show that diverse stressors, both experimental and physiological, compromise ER protein oxidation when UPR-imposed homeostatic control is lost. Using genetic analysis we uncovered redox heterogeneities in isogenic cell populations, and revealed functional interlinks between ER protein folding, modification, and quality control systems.
机译:内质网(ER)中蛋白质折叠的破坏导致未折叠的蛋白质积聚,从而触发未折叠的蛋白质应答(UPR)。 UPR输出反过来会减少ER展开的蛋白,从而关闭负反馈环。然而,由于无法直接测量体内未折叠蛋白的浓度,因此普遍认为每当UPR处于活动状态时,细胞就会承受“ ER应激”,因为ER氧化还原电位已针对氧化性蛋白折叠进行了优化,因此我们认为可测量的氧化还原为了证明这一概念,我们使用荧光蛋白报告基因动态测量单个细胞中的ER氧化还原状态和UPR活性,利用这些工具,我们发现,无论是实验压力还是生理压力,多种应激源均会损害ER蛋白的氧化通过基因分析,我们发现了等基因细胞群体中氧化还原异质性,并揭示了ER蛋白折叠,修饰和质量控制系统之间的功能性联系。

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