The Mitochondrial Apoptotic Effectors BAX/BAK Activate Caspase-3 and -7 to Trigger NLRP3 Inflammasome and Caspase-8 Driven IL-1β Activation

James E. Vince(The University of Melbourne), Dominic De Nardo(The University of Melbourne), Wenqing Gao(National Institute of Biological Sciences, Beijing), Angelina J. Vince(Walter and Eliza Hall Institute of Medical Research), Cathrine Hall(Walter and Eliza Hall Institute of Medical Research), Kate McArthur(The University of Melbourne), Daniel S. Simpson(The University of Melbourne), Swarna Lekha Vijayaraj(The University of Melbourne), Lisa Lindqvist(The University of Melbourne), Philippe Bouillet(The University of Melbourne), Mark A. Rizzacasa(The University of Melbourne), Si Ming Man(Australian National University), John Silke(The University of Melbourne), Seth L. Masters(The University of Melbourne), Guillaume Lessène(The University of Melbourne), David C.S. Huang(The University of Melbourne), Daniel H.D. Gray(The University of Melbourne), Benjamin T. Kile(The University of Melbourne), Feng Shao(National Institute of Biological Sciences, Beijing), Kate E. Lawlor(The University of Melbourne)
Cell Reports
November 1, 2018
Cited by 235Open Access
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Abstract

Intrinsic apoptosis resulting from BAX/BAK-mediated mitochondrial membrane damage is regarded as immunologically silent. We show here that in macrophages, BAX/BAK activation results in inhibitor of apoptosis (IAP) protein degradation to promote caspase-8-mediated activation of IL-1β. Furthermore, BAX/BAK signaling induces a parallel pathway to NLRP3 inflammasome-mediated caspase-1-dependent IL-1β maturation that requires potassium efflux. Remarkably, following BAX/BAK activation, the apoptotic executioner caspases, caspase-3 and -7, act upstream of both caspase-8 and NLRP3-induced IL-1β maturation and secretion. Conversely, the pyroptotic cell death effectors gasdermin D and gasdermin E are not essential for BAX/BAK-induced IL-1β release. These findings highlight that innate immune cells undergoing BAX/BAK-mediated apoptosis have the capacity to generate pro-inflammatory signals and provide an explanation as to why IL-1β activation is often associated with cellular stress, such as during chemotherapy.


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