首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Endoplasmic Reticulum (ER) Chaperone Regulation and Survival of Cells Compensating for Deficiency in the ER Stress Response Kinase PERK
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Endoplasmic Reticulum (ER) Chaperone Regulation and Survival of Cells Compensating for Deficiency in the ER Stress Response Kinase PERK

机译:内质网(ER)伴侣调节和细胞存活。 补偿内质网应激反应激酶的不足 珀克

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摘要

The activity of PERK, an endoplasmic reticulum (ER) transmembrane protein kinase, assists in an ER stress response designed to inhibit general protein synthesis while allowing upregulated synthesis of selective proteins such as the ATF4 transcription factor. PERK null mice exhibit phenotypes that especially affect secretory cell types. Although embryonic fibroblasts from these mice are difficult to transfect with high efficiency, we have generated 293 cells stably expressing the PERK-K618A dominant negative mutant. 293/PERK-K618A cells, in response to ER stress: (a) do not properly inhibit general protein synthesis, (b) exhibit defective/delayed induction of ATF4 and BiP, and (c) exhibit exuberant splice activation of XBP1 and robust cleavage activation of ATF6, with abnormal regulation of calreticulin levels. The data suggest compensatory mechanisms allowing for cell survival in the absence of functional PERK. Interestingly, although induction of CHOP (a transcription factor implicated in apoptosis) is notably delayed after onset of ER stress, 293/PERK-K618A cells eventually produce CHOP at normal or even supranormal levels and exhibit increased apoptosis either in response to general ER stress or, more importantly, to specific misfolded secretory proteins.
机译:PERK是一种内质网(ER)跨膜蛋白激酶,其活性有助于设计ER应激反应,以抑制一般的蛋白合成,同时允许上调选择性蛋白(如ATF4转录因子)的合成。 PERK空小鼠表现出特别影响分泌细胞类型的表型。尽管这些小鼠的胚胎成纤维细胞难以高效转染,但我们已经产生了稳定表达PERK-K618A显性负突变体的293细胞。响应ER应激的293 / PERK-K618A细胞:(a)不能正确抑制一般蛋白质合成,(b)表现出ATF4和BiP的缺陷/延迟诱导,并且(c)表现出XBP1旺盛的剪接激活和强大的裂解作用激活ATF6,并调节钙网蛋白水平。数据表明补偿机制允许在没有功能性PERK的情况下使细胞存活。有趣的是,尽管在内质网应激开始后,CHOP(一种与凋亡相关的转录因子)的诱导显着延迟,但293 / PERK-K618A细胞最终会以正常或什至超常水平产生CHOP,并响应一般内质网应激或凋亡而显示出增加的细胞凋亡。 ,更重要的是 特定的错误折叠的分泌蛋白。

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