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Protocol for the Differentiation of Human Induced Pluripotent Stem Cells into Mixed Cultures of Neurons and Glia for Neurotoxicity Testing
Published on: June 9, 2017
Reversible oxidation of ERK-directed protein phosphatases drives oxidative toxicity in neurons
David J Levinthal1, Donald B Defranco
1Center for Neuroscience and Department of Pharmacology, University of Pittsburgh School of Medicine, Pittsburgh, PA 15261, USA.
Abstract:
Oxidative stress links diverse neuropathological conditions that include stroke, Parkinson's disease, and Alzheimer's disease and has been modeled in vitro with various paradigms that lead to neuronal cell death following the increased accumulation of reactive oxygen species. For example, immortalized neurons and immature primary cortical neurons undergo cell death in response to depletion of the antioxidant glutathione, which can be elicited by administration of glutamate at high concentrations. We have demonstrated previously that this glutamate-induced oxidative toxicity requires activation of the mitogen-activated protein kinase member ERK1/2, but the mechanisms by which this activation takes place in oxidatively stressed neurons are still not fully known. In this study, we demonstrate that during oxidative stress, ERK-directed phosphatases of both the serine/threonine- and tyrosine-directed classes are selectively and reversibly inhibited via a mechanism that is dependent upon the oxidation of cysteine thiols. Furthermore, the impact of ERK-directed phosphatases on ERK1/2 activation and oxidative toxicity in neurons was tested in a neuronal cell line and in primary cortical cultures. Overexpression of the highly ERK-specific phosphatase MKP3 and its catalytic mutant, MKP3 C293S, were neuroprotective in transiently transfected HT22 cells and primary neurons. The neuroprotective effect of the MKP3 C293S mutant, which enhances ERK1/2 phosphorylation but blocks its nuclear translocation, demonstrates the necessity for active ERK1/2 nuclear localization for oxidative toxicity in neurons. Together, these data implicate the inhibition of endogenous ERK-directed phosphatases as a mechanism that leads to aberrant ERK1/2 activation and nuclear accumulation during oxidative toxicity in neurons.
Insights
Oxidative stress causes neuronal cell death by inhibiting ERK-directed phosphatases, leading to aberrant ERK1/2 activation. Restoring phosphatase activity or blocking ERK1/2 nuclear translocation protects neurons from oxidative toxicity.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Oxidative stress is implicated in neurodegenerative diseases like Alzheimer's and Parkinson's.
- Glutamate-induced toxicity in neurons involves reactive oxygen species and requires ERK1/2 activation.
- The precise mechanisms of ERK1/2 activation during oxidative stress remain unclear.
Purpose of the Study:
- To elucidate the mechanisms of ERK1/2 activation in oxidatively stressed neurons.
- To investigate the role of ERK-directed phosphatases in neuronal oxidative toxicity.
- To assess the neuroprotective potential of modulating phosphatase activity.
Main Methods:
- Utilized immortalized neuronal cell lines (HT22) and primary cortical neuron cultures.
- Induced oxidative stress using glutamate and monitored cell death.
- Investigated the activity and regulation of ERK-directed phosphatases.
- Examined the effects of overexpressing specific phosphatases (MKP3 and its mutant) on ERK1/2 activation and neuroprotection.
Main Results:
- Oxidative stress selectively and reversibly inhibits ERK-directed phosphatases through cysteine thiol oxidation.
- Overexpression of MKP3 and its catalytic mutant MKP3 C293S conferred neuroprotection.
- The neuroprotective effect of MKP3 C293S, which blocks ERK1/2 nuclear translocation, highlights the necessity of ERK1/2 nuclear localization for toxicity.
Conclusions:
- Inhibition of endogenous ERK-directed phosphatases contributes to aberrant ERK1/2 activation during oxidative stress.
- Aberrant ERK1/2 nuclear accumulation is crucial for oxidative toxicity in neurons.
- Modulating phosphatase activity and ERK1/2 nuclear localization presents potential therapeutic strategies for neuroprotection.
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