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Menadione triggers cell death through ROS-dependent mechanisms involving PARP activation without requiring apoptosis
Gabriel Loor1, Jyothisri Kondapalli, Jacqueline M Schriewer
1Department of Surgery, University of Chicago, Chicago, IL 60637, USA.
Abstract:
Low levels of reactive oxygen species (ROS) can function as redox-active signaling messengers, whereas high levels of ROS induce cellular damage. Menadione generates ROS through redox cycling, and high concentrations trigger cell death. Previous work suggests that menadione triggers cytochrome c release from mitochondria, whereas other studies implicate the activation of the mitochondrial permeability transition pore as the mediator of cell death. We investigated menadione-induced cell death in genetically modified cells lacking specific death-associated proteins. In cardiomyocytes, oxidant stress was assessed using the redox sensor RoGFP, expressed in the cytosol or the mitochondrial matrix. Menadione elicited rapid oxidation in both compartments, whereas it decreased mitochondrial potential and triggered cytochrome c redistribution to the cytosol. Cell death was attenuated by N-acetylcysteine and exogenous glutathione or by overexpression of cytosolic or mitochondria-targeted catalase. By contrast, no protection was observed in cells overexpressing Cu,Zn-SOD or Mn-SOD. Overexpression of antiapoptotic Bcl-X(L) protected against staurosporine-induced cell death, but it failed to confer protection against menadione. Genetic deletion of Bax and Bak, cytochrome c, cyclophilin D, or caspase-9 conferred no protection against menadione-induced cell death. However, cells lacking PARP-1 showed a significant decrease in menadione-induced cell death. Thus, menadione induces cell death through the generation of oxidant stress in multiple subcellular compartments, yet cytochrome c, Bax/Bak, caspase-9, and cyclophilin D are dispensable for cell death in this model. These studies suggest that multiple redundant cell death pathways are activated by menadione, but that PARP plays an essential role in mediating each of them.
Insights
Menadione-induced cell death involves reactive oxygen species (ROS) and impacts multiple cellular compartments. Poly (ADP-ribose) polymerase (PARP) plays a crucial role in mediating these cell death pathways, independent of traditional apoptosis factors.
Area of Science:
- Cellular Biology
- Biochemistry
- Toxicology
Background:
- Reactive oxygen species (ROS) act as signaling molecules at low levels but cause cellular damage at high concentrations.
- Menadione induces ROS via redox cycling, leading to cell death, potentially through mitochondrial pathways.
- Conflicting evidence exists regarding menadione-induced cell death mechanisms, involving cytochrome c release or mitochondrial permeability transition pore activation.
Purpose of the Study:
- To investigate the mechanisms of menadione-induced cell death in genetically modified cells.
- To identify key proteins involved in menadione-induced oxidative stress and subsequent cell death.
- To elucidate the role of specific death-associated proteins in menadione toxicity.
Main Methods:
- Utilized genetically modified cells, including those lacking specific death-associated proteins.
- Assessed oxidant stress using the redox sensor RoGFP in cytosolic and mitochondrial compartments.
- Measured mitochondrial potential, cytochrome c redistribution, and cell death following menadione treatment.
Main Results:
- Menadione induced rapid oxidation in both cytosol and mitochondria, decreased mitochondrial potential, and caused cytochrome c release.
- Antioxidants like N-acetylcysteine and catalase attenuated cell death, while SOD overexpression offered no protection.
- Genetic deletion of Bax, Bak, cytochrome c, cyclophilin D, or caspase-9 did not prevent cell death; however, PARP-1 deletion significantly reduced it.
Conclusions:
- Menadione induces cell death via oxidant stress in multiple cellular locations.
- Key apoptotic factors like cytochrome c, Bax/Bak, caspase-9, and cyclophilin D are not essential for menadione-induced cell death.
- Poly (ADP-ribose) polymerase (PARP) plays a critical, essential role in mediating menadione-induced cell death pathways.
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