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Stress-Independent Activation of XBP1s and/or ATF6 Reveals Three Functionally Diverse ER Proteostasis Environments

Cell Reports · 2013 · Vol. 3(4) · pp. 1279–1292
Matthew D. ShouldersLisa M. RynoJoseph C. GenereuxJames J. MorescoPatricia G. TuChunlei WuJohn R. YatesAndrew I. SuJeffery W. KellyR. Luke Wiseman

Abstract

The unfolded protein response (UPR) maintains endoplasmic reticulum (ER) proteostasis through the activation of transcription factors such as XBP1s and ATF6. The functional consequences of these transcription factors for ER proteostasis remain poorly defined. Here, we describe methodology that enables orthogonal, small-molecule-mediated activation of the UPR-associated transcription factors XBP1s and/or ATF6 in the same cell independent of stress. We employ transcriptomics and quantitative proteomics to evaluate ER proteostasis network remodeling owing to the XBP1s and/or ATF6 transcriptional programs. Furthermore, we demonstrate that the three ER proteostasis environments accessible by activating XBP1s and/or ATF6 differentially influence the folding, trafficking, and degradation of destabilized ER client proteins without globally affecting the endogenous proteome. Our data reveal how the ER proteostasis network is remodeled by the XBP1s and/or ATF6 transcriptional programs at the molecular level and demonstrate the potential for selective restoration of aberrant ER proteostasis of pathologic, destabilized proteins through arm-selective UPR activation.

Endoplasmic Reticulum Stress and DiseaseAutophagy in Disease and TherapyTransgenic Plants and ApplicationsProteostasisATF6Unfolded protein responseXBP1Cell biologyEndoplasmic reticulumTranscription factorProteomeBiologyEndoplasmic-reticulum-associated protein degradation

MeSH terms

Regulatory Factor X Transcription FactorsX-Box Binding Protein 1DNA-Binding ProteinsDoxorubicinEndoplasmic ReticulumHumansPrealbuminTranscription FactorsTranscription, GeneticTrimethoprimProtein FoldingProteomicsActivating Transcription Factor 6Unfolded Protein ResponseHep G2 Cells

Funding

  • American Cancer Society
  • Thailand Science Research and Innovation
  • National Heart, Lung, and Blood Institute
  • National Institute of General Medical Sciences
Citations
575
FWCI
17.44
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References
57
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100%
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Cited by
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