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PMID: 12370288 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Regulation of protein synthesis by hypoxia via activation of the endoplasmic reticulum kinase PERK and phosphorylation of the translation initiation factor eIF2alpha.

Molecular and cellular biology ·Vol. 22 ·No. 21 ·2002-11-00 ·Pages 7405-16

Koumenis C, Naczki C, Koritzinsky M, Rastani S, Diehl A, Sonenberg N, Koromilas A, Wouters BG

Abstract

Hypoxia profoundly influences tumor development and response to therapy. While progress has been made in identifying individual gene products whose synthesis is altered under hypoxia, little is known about the mechanism by which hypoxia induces a global downregulation of protein synthesis. A critical step in the regulation of protein synthesis in response to stress is the phosphorylation of translation initiation factor eIF2alpha on Ser51, which leads to inhibition of new protein synthesis. Here we report that exposure of human diploid fibroblasts and transformed cells to hypoxia led to phosphorylation of eIF2alpha, a modification that was readily reversed upon reoxygenation. Expression of a transdominant, nonphosphorylatable mutant allele of eIF2alpha attenuated the repression of protein synthesis under hypoxia. The endoplasmic reticulum (ER)-resident eIF2alpha kinase PERK was hyperphosphorylated upon hypoxic stress, and overexpression of wild-type PERK increased the levels of hypoxia-induced phosphorylation of eIF2alpha. Cells stably expressing a dominant-negative PERK allele and mouse embryonic fibroblasts with a homozygous deletion of PERK exhibited attenuated phosphorylation of eIF2alpha and reduced inhibition of protein synthesis in response to hypoxia. PERK(-/-) mouse embryo fibroblasts failed to phosphorylate eIF2alpha and exhibited lower survival after prolonged exposure to hypoxia than did wild-type fibroblasts. These results indicate that adaptation of cells to hypoxic stress requires activation of PERK and phosphorylation of eIF2alpha and suggest that the mechanism of hypoxia-induced translational attenuation may be linked to ER stress and the unfolded-protein response.

MeSH Terms
3T3 Cells Animals Cobalt/pharmacology Endoplasmic Reticulum/enzymology Enzyme Activation Eukaryotic Initiation Factor-2/metabolism Fibroblasts/metabolism Gene Deletion Genes, Dominant HeLa Cells Homozygote Humans Hypoxia Hypoxia-Inducible Factor 1, alpha Subunit Immunoblotting Kinetics Methionine/metabolism Mice Models, Biological Oxygen/metabolism Phosphorylation Plasmids/metabolism Protein Biosynthesis Protein Folding Proteins/metabolism Serine/chemistry Thapsigargin/pharmacology Time Factors Transcription Factors/metabolism Transfection eIF-2 Kinase/metabolism
Chemicals
Eukaryotic Initiation Factor-2 HIF1A protein, human Hypoxia-Inducible Factor 1, alpha Subunit Proteins Transcription Factors Cobalt Serine Thapsigargin Methionine PERK kinase eIF-2 Kinase cobaltous chloride Oxygen
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Koumenis Constantinos
Department of Radiation Oncology, Wake Forest University School of Medicine, Winston-Salem, North Carolina 27157, USA. ckoumeni@wfubmc.edu
Naczki Christine
Koritzinsky Marianne
Rastani Sally
Diehl Alan
Sonenberg Nahum
Koromilas Antonis
Wouters Bradly G
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Article Info
Journal
Molecular and cellular biology
Abbr.
Mol Cell Biol
ISSN
0270-7306
Published
2002-11-00
Pages
7405-16
Language
English
Region
United States
NLM ID
8109087
PMCID
PMC135664
Subset
IM
Grants
NCI NIH HHS · R01 CA094214 · United States
NCI NIH HHS · CA94214 · United States
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