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December 12, 2005Circulation99 citationsOpen Access

Nuclear Factor-κB–Mediated Cell Survival Involves Transcriptional Silencing of the Mitochondrial Death Gene BNIP3 in Ventricular Myocytes

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DBDelphine BaetzKRKelly M. RegulaKEKaren Ens

Structured PICO

P
Population
Ventricular myocytes and cells derived from p65(-/-)-deficient mice
I
Intervention
Activation of the NF-kappaB signaling pathway (via IKKbeta or p65 NF-kappaB expression) and genetic/functional ablation of the BNIP3 gene
C
Comparator
Cells defective for NF-kappaB signaling (using nonphosphorylative IkappaB) or p65(-/-)-deficient cells
O
Outcome
Mitochondrial permeability transition pore (PTP) opening, cell death, and BNIP3 gene activity/expressionsurrogate

NF-kappaB promotes ventricular myocyte survival by transcriptionally silencing the hypoxia-inducible mitochondrial death gene BNIP3.

Abstract

BACKGROUND: A survival role for the transcription factor nuclear factor-kappaB (NF-kappaB) in ventricular myocytes has been reported; however, the underlying mechanism is undefined. In this report we provide new mechanistic evidence that survival signals conferred by NF-kappaB impinge on the hypoxia-inducible death factor BNIP3. METHODS AND RESULTS: Activation of the NF-kappaB signaling pathway by IKKbeta in ventricular myocytes suppressed mitochondrial permeability transition pore (PTP) opening and cell death provoked by BNIP3. Expression of IKKbeta or p65 NF-kappaB suppressed basal and hypoxia-inducible BNIP3 gene activity. Deletion analysis of the BNIP3 promoter revealed the NF-kappaB elements to be crucial for inhibiting basal and inducible BNIP3 gene activity. Cells derived from p65(-/-)-deficient mice or ventricular myocytes rendered defective for NF-kappaB signaling with a nonphosphorylative IkappaB exhibited increased basal BNIP3 gene expression, mitochondrial PTP, and cell death. Genetic or functional ablation of the BNIP3 gene in NF-kappaB-defective myocytes rescued them from mitochondrial defects and cell death. CONCLUSIONS: The data provide new compelling evidence that NF-kappaB suppresses mitochondrial defects and cell death of ventricular myocytes through a mechanism that transcriptionally silences the death gene BNIP3. Collectively, our data provide new mechanistic insight into the mode by which NF-kappaB suppresses cell death and identify BNIP3 as a key transcriptional target for NF-kappaB-regulated expression in ventricular myocytes.

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Cite This Study

Baetz et al. (2005) studied this question.

synapsesocial.com/papers/6a81ca6bffaafd634258cb62https://doi.org/10.1161/circulationaha.105.573899
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