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Quinone reductase inhibitors block SAPK/JNK and NFkappaB pathways and potentiate apoptosis
J V Cross1, J C Deak, E A Rich
1Department of Medicine, Institute of Pathology, Case Western Reserve University, Cleveland, Ohio 44106, USA.
Abstract:
A variety of environmental stresses stimulate the mitogen-activated protein kinase/extracellular signal-regulated kinase (ERK) kinase (MEKK) > stress-activated protein kinase (SAPK)-ERK kinase (SEK) > SAPK/c-Jun NH(2)-terminal kinase (JNK) stress-activated protein kinase cascade and coordinately activate the transcription factor NFkappaB. Mechanisms of stress activation upstream of MEKK1 have not been precisely determined. Redox mechanisms involving sulfhydryls are likely because N-acetyl-cysteine at millimolar concentrations blocks stress signals. Because intracellular sulfhydryl concentrations can be regulated through redox cycling involving reactive quinones (1), we tested the ability of quinone reductase inhibitors to alter stress signaling. Several quinone reductases are inhibited by dicoumarol, a coumarin derivative. Dicoumarol prevented SAPK activation in vivo by chemical cell stressors and also prevented SAPK activation induced by expression of the tumor necrosis factor alpha (TNFalpha) receptor-associated protein TRAF2 but not by expression of truncated active MEKK1. Other coumarin derivatives failed to block SAPK activation, but other inhibitors of quinone reductases, particularly menadione, similarly blocked SAPK activation. Cells deficient in a major quinone reductase, NQO1, displayed hypersensitivity to dicoumarol stress inhibition, whereas SAPK in cells reconstituted with the NQO1 gene displayed relative dicoumarol resistance. Consistent with the proposed role of overlapping upstream signaling cascades in activation of NFkappaB, dicoumarol also blocked NFkappaB activation in primary macrophages stimulated with either lipopolysaccharide or TNFalpha. In addition, dicoumarol strongly potentiated TNFalpha-induced apoptosis in HeLa cells, probably by blocking the anti-apoptotic effect of NFkappaB. The ability of dicoumarol to simultaneously inhibit SAPK and NFkappaB activation and to potentiate apoptotic cell death suggests that SAPK is not an obligate participant in apoptosis. Dicoumarol, currently in clinical use as an oral anticoagulant, represents a potential therapeutic inhibitor of the SAPK and NFkappaB response.
Insights
Dicoumarol inhibits stress-activated protein kinase (SAPK) and NFkappaB signaling pathways. This compound, already used as an anticoagulant, may offer therapeutic potential for inflammatory and apoptotic responses.
Area of Science:
- Cellular signaling pathways
- Stress response mechanisms
- Redox biology
Background:
- Environmental stresses activate the SAPK/JNK cascade and NFkappaB.
- Upstream mechanisms of MEKK1 activation remain unclear.
- Redox mechanisms involving sulfhydryls are implicated in stress signaling.
Purpose of the Study:
- To investigate the role of quinone reductases in stress signaling.
- To determine if quinone reductase inhibitors can modulate SAPK and NFkappaB activation.
- To explore the therapeutic potential of dicoumarol in modulating these pathways.
Main Methods:
- Inhibition of quinone reductases using dicoumarol and other coumarin derivatives.
- Assessment of SAPK activation in response to chemical stressors and TRAF2 expression.
- Analysis of NFkappaB activation in macrophages stimulated with LPS or TNFalpha.
- Evaluation of dicoumarol's effect on TNFalpha-induced apoptosis.
Main Results:
- Dicoumarol blocked SAPK activation induced by chemical stressors and TRAF2, but not by active MEKK1.
- Cells deficient in NQO1 showed hypersensitivity to dicoumarol's inhibitory effects.
- Dicoumarol inhibited both SAPK and NFkappaB activation.
- Dicoumarol potentiated TNFalpha-induced apoptosis, suggesting SAPK is not essential for apoptosis.
Conclusions:
- Quinone reductase activity is crucial for stress-induced SAPK and NFkappaB activation.
- Dicoumarol effectively inhibits key stress signaling pathways.
- Dicoumarol's ability to modulate apoptosis suggests therapeutic applications beyond anticoagulation.
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