A BAX/BAK and cyclophilin D-independent intrinsic apoptosis pathway Journal Article


Authors: Zamorano, S.; Rojas-Rivera, D.; Lisbona, F.; Parra, V.; Court, F. A.; Villegas, R.; Cheng, E. H.; Korsmeyer, S. J.; Lavandero, S.; Hetz, C.
Article Title: A BAX/BAK and cyclophilin D-independent intrinsic apoptosis pathway
Abstract: Most intrinsic death signals converge into the activation of pro-apoptotic BCL-2 family members BAX and BAK at the mitochondria, resulting in the release of cytochrome c and apoptosome activation. Chronic endoplasmic reticulum (ER) stress leads to apoptosis through the upregulation of a subset of pro-apoptotic BH3-only proteins, activating BAX and BAK at the mitochondria. Here we provide evidence indicating that the full resistance of BAX and BAK double deficient (DKO) cells to ER stress is reverted by stimulation in combination with mild serum withdrawal. Cell death under these conditions was characterized by the appearance of classical apoptosis markers, caspase-9 activation, release of cytochrome c, and was inhibited by knocking down caspase-9, but insensitive to BCL-X L overexpression. Similarly, the resistance of BIM and PUMA double deficient cells to ER stress was reverted by mild serum withdrawal. Surprisingly, BAX/BAK-independent cell death did not require Cyclophilin D (CypD) expression, an important regulator of the mitochondrial permeability transition pore. Our results suggest the existence of an alternative intrinsic apoptosis pathway emerging from a cross talk between the ER and the mitochondria. © 2012 Zamorano et al.
Keywords: controlled study; protein expression; nonhuman; animal cell; mouse; animals; mice; apoptosis; embryo; bim protein; enzyme activation; protein bcl xl; endoplasmic reticulum; blood; caspase 9; cell stimulation; cell interaction; enzyme release; puma protein; regulator protein; cytochrome c; cytochromes c; protein bax; cyclophilin d; mitochondrial permeability; unfolded protein response; protein bak; bcl-2 homologous antagonist-killer protein; bcl-2-associated x protein; cyclophilins; endoplasmic reticulum stress
Journal Title: PLoS ONE
Volume: 7
Issue: 6
ISSN: 1932-6203
Publisher: Public Library of Science  
Date Published: 2012-01-01
Start Page: e37782
Language: English
DOI: 10.1371/journal.pone.0037782
PROVIDER: scopus
PMCID: PMC3373601
PUBMED: 22719850
DOI/URL:
Notes: --- - "Export Date: 2 July 2012" - "Source: Scopus"
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  1. Emily H Cheng
    78 Cheng