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Accueil > Biblio > The caspase-generated fragments of PKR cooperate to activate full-length PKR and inhibit translation.

The caspase-generated fragments of PKR cooperate to activate full-length PKR and inhibit translation. [1]

Peer reviewed scientific article

SCIENSANO

Auteurs

Kalai, M [2]; Vanessa Suin [3]; Festjens, N [4]; Meeus, A [5]; Bernis, A [6]; Wang, X-M [7]; Saelens, X [8]; Vandenabeele, P [9]

Mots-clés

  1. Apoptosis [10]
  2. Caspase Inhibitors [11]
  3. caspases [12]
  4. Cell Line [13]
  5. eIF-2 Kinase [14]
  6. Enzyme Activation [15]
  7. Enzyme Inhibitors [16]
  8. Humans [17]
  9. Immunoprecipitation [18]
  10. Jurkat Cells [19]
  11. Necrosis [20]
  12. Peptide Fragments [21]
  13. Phosphorylation [22]
  14. Protein Binding [23]
  15. Protein Biosynthesis [24]
  16. Protein Processing, Post-Translational [25]
  17. Protein Structure, Tertiary [26]
  18. Receptor-Interacting Protein Serine-Threonine Kinases [27]
  19. RNA, Double-Stranded [28]
  20. Signal Transduction [29]

Résumé:

We have studied the involvement of receptor interacting protein kinase-1 (RIP1) and dsRNA-activated protein kinase (PKR) in external dsRNA-induced apoptotic and necrotic cell death in Jurkat T cell lymphoma. Our results suggest that RIP1 plays an imported role in dsRNA-induced apoptosis and necrosis. We demonstrated that contrary to necrosis, protein synthesis is inhibited in apoptosis. Here, we show that phosphorylation of translation initiation factor 2-alpha (eukaryotic initiation factor 2-alpha (eIF2-alpha)) and its kinase, PKR, occur in dsRNA-induced apoptosis but not in necrosis. Thes…
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Résumé

We have studied the involvement of receptor interacting protein kinase-1 (RIP1) and dsRNA-activated protein kinase (PKR) in external dsRNA-induced apoptotic and necrotic cell death in Jurkat T cell lymphoma. Our results suggest that RIP1 plays an imported role in dsRNA-induced apoptosis and necrosis. We demonstrated that contrary to necrosis, protein synthesis is inhibited in apoptosis. Here, we show that phosphorylation of translation initiation factor 2-alpha (eukaryotic initiation factor 2-alpha (eIF2-alpha)) and its kinase, PKR, occur in dsRNA-induced apoptosis but not in necrosis. These events are caspase-dependent and coincide with the appearance of the caspase-mediated PKR fragments, N-terminal domain (ND) and kinase domain (KD). Our immunoprecipitation experiments demonstrated that both fragments could independently co-precipitate with full-length PKR. Expression of PKR-KD leads to PKR and eIF2-alpha phosphorylation and inhibits protein translation, whereas that of PKR-ND does not. Co-expression of PKR-ND and PKR-KD promotes their interaction with PKR, PKR and eIF2-alpha phosphorylation and suppresses protein translation better than PKR-KD alone. Our findings suggest a caspase-dependent mode of activation of PKR in apoptosis in which the PKR-KD fragment interacts with and activates intact PKR. PKR-ND facilitates the interaction of PKR-KD with full-length PKR and thus the activation of the kinase and amplifies the translation inhibitory signal.

Associated health topics:


Source URL:https://sciensano.be/fr/biblio/caspase-generated-fragments-pkr-cooperate-activate-full-length-pkr-and-inhibit-translation

Liens
[1] https://sciensano.be/fr/biblio/caspase-generated-fragments-pkr-cooperate-activate-full-length-pkr-and-inhibit-translation [2] https://sciensano.be/fr/biblio?f%5Bauthor%5D=36345&f%5Bsearch%5D=Kalai%2C%20M [3] https://sciensano.be/fr/biblio?f%5Bauthor%5D=35760&f%5Bsearch%5D=Vanessa%20Suin [4] https://sciensano.be/fr/biblio?f%5Bauthor%5D=49791&f%5Bsearch%5D=Festjens%2C%20N [5] https://sciensano.be/fr/biblio?f%5Bauthor%5D=49794&f%5Bsearch%5D=Meeus%2C%20A [6] https://sciensano.be/fr/biblio?f%5Bauthor%5D=49797&f%5Bsearch%5D=Bernis%2C%20A [7] https://sciensano.be/fr/biblio?f%5Bauthor%5D=49800&f%5Bsearch%5D=Wang%2C%20X-M [8] https://sciensano.be/fr/biblio?f%5Bauthor%5D=49803&f%5Bsearch%5D=Saelens%2C%20X [9] https://sciensano.be/fr/biblio?f%5Bauthor%5D=36336&f%5Bsearch%5D=Vandenabeele%2C%20P [10] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=24648&f%5Bsearch%5D=Apoptosis [11] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=33024&f%5Bsearch%5D=Caspase%20Inhibitors [12] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=26055&f%5Bsearch%5D=caspases [13] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=462&f%5Bsearch%5D=Cell%20Line [14] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=33039&f%5Bsearch%5D=eIF-2%20Kinase [15] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=19983&f%5Bsearch%5D=Enzyme%20Activation [16] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=20301&f%5Bsearch%5D=Enzyme%20Inhibitors [17] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=648&f%5Bsearch%5D=Humans [18] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=33027&f%5Bsearch%5D=Immunoprecipitation [19] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=33030&f%5Bsearch%5D=Jurkat%20Cells [20] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=3507&f%5Bsearch%5D=Necrosis [21] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=23883&f%5Bsearch%5D=Peptide%20Fragments [22] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=23709&f%5Bsearch%5D=Phosphorylation [23] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=23175&f%5Bsearch%5D=Protein%20Binding [24] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=29754&f%5Bsearch%5D=Protein%20Biosynthesis [25] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=33033&f%5Bsearch%5D=Protein%20Processing%2C%20Post-Translational [26] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=28869&f%5Bsearch%5D=Protein%20Structure%2C%20Tertiary [27] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=33036&f%5Bsearch%5D=Receptor-Interacting%20Protein%20Serine-Threonine%20Kinases [28] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=29280&f%5Bsearch%5D=RNA%2C%20Double-Stranded [29] https://sciensano.be/fr/biblio?f%5Bkeyword%5D=17643&f%5Bsearch%5D=Signal%20Transduction