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C/EBPγ Is a Critical Regulator of Cellular Stress Response Networks through Heterodimerization with ATF4
Author(s) -
Christopher J. Huggins,
Manasi K. Mayekar,
Nancy Martín,
Karen Saylor,
Mesfin Gonit,
Parthav Jailwala,
Manjula Kasoji,
Diana C. Haines,
Octavio A. Quiñones,
Peter F. Johnson
Publication year - 2015
Publication title -
molecular and cellular biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.14
H-Index - 327
eISSN - 1067-8824
pISSN - 0270-7306
DOI - 10.1128/mcb.00911-15
Subject(s) - atf4 , biology , integrated stress response , unfolded protein response , transcription factor , microbiology and biotechnology , ccaat enhancer binding proteins , regulator , endoplasmic reticulum , gene , biochemistry , nuclear protein , translation (biology) , messenger rna
The integrated stress response (ISR) controls cellular adaptations to nutrient deprivation, redox imbalances, and endoplasmic reticulum (ER) stress. ISR genes are upregulated in stressed cells, primarily by the bZIP transcription factor ATF4 through its recruitment tocis -regulatory C/EBP:ATF response elements (CAREs) together with a dimeric partner of uncertain identity. Here, we show that C/EBPγ:ATF4 heterodimers, but not C/EBPβ:ATF4 dimers, are the predominant CARE-binding species in stressed cells. C/EBPγ and ATF4 associate with genomic CAREs in a mutually dependent manner and coregulate many ISR genes. In contrast, the C/EBP family members C/EBPβ and C/EBP homologous protein (CHOP) were largely dispensable for induction of stress genes.Cebpg −/− mouse embryonic fibroblasts (MEFs) proliferate poorly and exhibit oxidative stress due to reduced glutathione levels and impaired expression of several glutathione biosynthesis pathway genes.Cebpg −/− mice (C57BL/6 background) display reduced body size and microphthalmia, similar to ATF4-null animals. In addition, C/EBPγ-deficient newborns die from atelectasis and respiratory failure, which can be mitigated byin utero exposure to the antioxidant,N -acetyl-cysteine.Cebpg −/− mice on a mixed strain background showed improved viability but, upon aging, developed significantly fewer malignant solid tumors than WT animals. Our findings identify C/EBPγ as a novel antioxidant regulator and an obligatory ATF4 partner that controls redox homeostasis in normal and cancerous cells.

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