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Integrated stress response plasticity governs normal cell adaptation to chronic stress via the PP2A-TFE3-ATF4 pathway.

Publication ,  Journal Article
A Avelar, R; Gupta, R; Carvette, G; da Veiga Leprevost, F; Jasti, M; Colina, J; Teitel, J; Nesvizhskii, AI; O'Connor, CM; Hatzoglou, M ...
Published in: Cell Death Differ
December 2024

The integrated stress response (ISR) regulates cell fate during conditions of stress by leveraging the cell's capacity to endure sustainable and efficient adaptive stress responses. Protein phosphatase 2A (PP2A) activity modulation has been shown to be successful in achieving both therapeutic efficacy and safety across various cancer models. However, the molecular mechanisms driving its selective antitumor effects remain unclear. Here, we show for the first time that ISR plasticity relies on PP2A activation to regulate drug response and dictate cellular survival under conditions of chronic stress. We demonstrate that genetic and chemical modulation of the PP2A leads to chronic proteolytic stress and triggers an ISR to dictate whether the cell lives or dies. More specifically, we uncovered that the PP2A-TFE3-ATF4 pathway governs ISR cell plasticity during endoplasmic reticular and cellular stress independent of the unfolded protein response. We further show that normal cells reprogram their genetic signatures to undergo ISR-mediated adaptation and homeostatic recovery thereby avoiding toxicity following PP2A-mediated stress. Conversely, oncogenic specific cytotoxicity induced by chemical modulation of PP2A is achieved by activating chronic and irreversible ISR in cancer cells. Our findings propose that a differential response to chemical modulation of PP2A is determined by intrinsic ISR plasticity, providing a novel biological vulnerability to selectively induce cancer cell death and improve targeted therapeutic efficacy.

Duke Scholars

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Published In

Cell Death Differ

DOI

EISSN

1476-5403

Publication Date

December 2024

Volume

31

Issue

12

Start / End Page

1761 / 1775

Location

England

Related Subject Headings

  • Unfolded Protein Response
  • Stress, Physiological
  • Signal Transduction
  • Protein Phosphatase 2
  • Mice
  • Humans
  • Endoplasmic Reticulum Stress
  • Cell Plasticity
  • Biochemistry & Molecular Biology
  • Basic Helix-Loop-Helix Leucine Zipper Transcription Factors
 

Citation

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A Avelar, R., Gupta, R., Carvette, G., da Veiga Leprevost, F., Jasti, M., Colina, J., … DiFeo, A. (2024). Integrated stress response plasticity governs normal cell adaptation to chronic stress via the PP2A-TFE3-ATF4 pathway. Cell Death Differ, 31(12), 1761–1775. https://doi.org/10.1038/s41418-024-01378-3
A Avelar, Rita, Riya Gupta, Grace Carvette, Felipe da Veiga Leprevost, Medhasri Jasti, Jose Colina, Jessica Teitel, et al. “Integrated stress response plasticity governs normal cell adaptation to chronic stress via the PP2A-TFE3-ATF4 pathway.Cell Death Differ 31, no. 12 (December 2024): 1761–75. https://doi.org/10.1038/s41418-024-01378-3.
A Avelar R, Gupta R, Carvette G, da Veiga Leprevost F, Jasti M, Colina J, et al. Integrated stress response plasticity governs normal cell adaptation to chronic stress via the PP2A-TFE3-ATF4 pathway. Cell Death Differ. 2024 Dec;31(12):1761–75.
A Avelar, Rita, et al. “Integrated stress response plasticity governs normal cell adaptation to chronic stress via the PP2A-TFE3-ATF4 pathway.Cell Death Differ, vol. 31, no. 12, Dec. 2024, pp. 1761–75. Pubmed, doi:10.1038/s41418-024-01378-3.
A Avelar R, Gupta R, Carvette G, da Veiga Leprevost F, Jasti M, Colina J, Teitel J, Nesvizhskii AI, O’Connor CM, Hatzoglou M, Shenolikar S, Arvan P, Narla G, DiFeo A. Integrated stress response plasticity governs normal cell adaptation to chronic stress via the PP2A-TFE3-ATF4 pathway. Cell Death Differ. 2024 Dec;31(12):1761–1775.

Published In

Cell Death Differ

DOI

EISSN

1476-5403

Publication Date

December 2024

Volume

31

Issue

12

Start / End Page

1761 / 1775

Location

England

Related Subject Headings

  • Unfolded Protein Response
  • Stress, Physiological
  • Signal Transduction
  • Protein Phosphatase 2
  • Mice
  • Humans
  • Endoplasmic Reticulum Stress
  • Cell Plasticity
  • Biochemistry & Molecular Biology
  • Basic Helix-Loop-Helix Leucine Zipper Transcription Factors