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ROS Live Cell Imaging During Neuronal Development
Published on: February 9, 2021
Oxidative neuronal injury. The dark side of ERK1/2
Charleen T Chu1, David J Levinthal, Scott M Kulich
1Department of Pathology, Division of Neuropathology, University of Pittsburgh School of Medicine, Room A-516 UPMC Presbyterian, 200 Lothrop Street, Pittsburgh, PA 15213, USA. chu@np.awing.upmc.edu
Abstract:
The extracellular signal regulated protein kinases (ERK1/2) are essential for normal development and functional plasticity of the central nervous system. However, a growing number of recent studies in models of cerebral ischemia, brain trauma and neurodegenerative diseases implicate a detrimental role for ERK1/2 signaling during oxidative neuronal injury. Neurons undergoing oxidative stress-related injuries typically display a biphasic or sustained pattern of ERK1/2 activation. A variety of potential targets of reactive oxygen species and reactive nitrogen species could contribute to ERK1/2 activation. These include cell surface receptors, G proteins, upstream kinases, protein phosphatases and proteasome components, each of which could be direct or indirect targets of reactive oxygen or nitrogen species, thereby modulating the duration and magnitude of ERK1/2 activation. Neuronal oxidative stress also appears to influence the subcellular trafficking and/or localization of activated ERK1/2. Differences in compartmentalization of phosphorylated ERK1/2 have been observed in diseased or injured human neurons and in their respective animal and cell culture model systems. We propose that differential accessibility of ERK1/2 to downstream targets, which is dictated by the persistent activation of ERK1/2 within distinct subcellular compartments, underlies the neurotoxic responses that are driven by this kinase.
Insights
Extracellular signal-regulated kinases (ERK1/2) play a dual role in the central nervous system. Persistent ERK1/2 activation during oxidative stress contributes to neurotoxicity by altering kinase localization.
Area of Science:
- Neuroscience
- Cellular Biology
- Molecular Biology
Background:
- Extracellular signal-regulated kinases (ERK1/2) are crucial for central nervous system development and plasticity.
- Emerging evidence suggests ERK1/2 signaling contributes to neurotoxicity in conditions like cerebral ischemia, brain trauma, and neurodegenerative diseases.
Purpose of the Study:
- To explore the detrimental role of ERK1/2 signaling in oxidative neuronal injury.
- To investigate the mechanisms underlying sustained ERK1/2 activation and its consequences in neurotoxicity.
Main Methods:
- Analysis of ERK1/2 activation patterns in neurons under oxidative stress.
- Identification of potential reactive oxygen and nitrogen species targets influencing ERK1/2 signaling.
- Examination of subcellular localization of activated ERK1/2 in injured neurons.
Main Results:
- Neurons experiencing oxidative stress exhibit biphasic or sustained ERK1/2 activation.
- Reactive oxygen and nitrogen species can modulate ERK1/2 activation through various cellular components.
- Oxidative stress affects the subcellular trafficking and compartmentalization of activated ERK1/2.
Conclusions:
- Persistent ERK1/2 activation within specific subcellular compartments contributes to neurotoxic responses.
- Differential accessibility of ERK1/2 to downstream targets due to altered localization underlies oxidative stress-induced neurotoxicity.
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