Proteomic Analysis Reveals Branch-specific Regulation of the Unfolded Protein Response by Nonsense-mediated mRNA

Jana Sieber1, Christian Hauer2, Madhuri Bhuvanagiri1

  • 1From the ‡Molecular Medicine Partnership Unit, European Molecular Biology Laboratory, University of Heidelberg, Heidelberg, Germany; §Department of Pediatric Oncology, Hematology and Immunology, University of Heidelberg, Heidelberg, Germany;

Insights

Nonsense-mediated mRNA decay (NMD) normally degrades faulty transcripts. Mild stress reduces NMD, boosting protein synthesis for the unfolded protein response, creating a feedback loop that enhances cellular stress adaptation.

Area of Science:

  • Molecular Biology
  • Cellular Stress Response
  • Gene Expression Regulation

Background:

  • Nonsense-mediated mRNA decay (NMD) is a surveillance pathway regulating gene expression.
  • NMD controls both aberrant and physiological transcripts.
  • Cellular stress impacts NMD efficiency and protein synthesis.

Purpose of the Study:

  • To investigate de novo protein synthesis during NMD inhibition and endoplasmic reticulum (ER) stress.
  • To elucidate the interplay between ER stress, NMD, and protein synthesis.
  • To understand the branch-specific regulation of the unfolded protein response (UPR).

Main Methods:

  • Combined pulsed azidohomoalanine (AHA) and stable isotope labeling by amino acids in cell culture (SILAC) for quantitative proteomic analysis.
  • Utilized click chemistry for protein enrichment.
  • Analyzed de novo protein synthesis via mass spectrometry (MS) following dithiotreitol (DTT)-induced ER stress or NMD inhibition.

Main Results:

  • Mild ER stress up-regulates de novo synthesis of all three UPR branches (PERK, IRE1, ATF6) without affecting translation initiation or global translation.
  • NMD inhibition specifically induces de novo protein synthesis of PERK and IRE1 pathway targets.
  • ATF6-responsive genes were not significantly regulated upon NMD inhibition.

Conclusions:

  • Mild ER stress inhibits NMD efficiency, leading to increased synthesis of UPR components.
  • This creates a positive feedback loop where reduced NMD enhances the ER stress response in a branch-specific manner.
  • The findings support a model of adaptive cellular response to proteotoxic stress.

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