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Published on: June 9, 2017
eEF2K inhibition blocks Aβ42 neurotoxicity by promoting an NRF2 antioxidant response
Asad Jan1,2, Brandon Jansonius2, Alberto Delaidelli1,2
1Department of Pathology and Laboratory Medicine, University of British Columbia, Vancouver, Canada.
Abstract:
Soluble oligomers of amyloid-β (Aβ) impair synaptic plasticity, perturb neuronal energy homeostasis, and are implicated in Alzheimer's disease (AD) pathogenesis. Therefore, significant efforts in AD drug discovery research aim to prevent the formation of Aβ oligomers or block their neurotoxicity. The eukaryotic elongation factor-2 kinase (eEF2K) plays a critical role in synaptic plasticity, and couples neurotransmission to local dendritic mRNA translation. Recent evidence indicates that Aβ oligomers activate neuronal eEF2K, suggesting a potential link to Aβ induced synaptic dysfunction. However, a detailed understanding of the role of eEF2K in AD pathogenesis, and therapeutic potential of eEF2K inhibition in AD, remain to be determined. Here, we show that eEF2K activity is increased in postmortem AD patient cortex and hippocampus, and in the hippocampus of aged transgenic AD mice. Furthermore, eEF2K inhibition using pharmacological or genetic approaches prevented the toxic effects of Aβ42 oligomers on neuronal viability and dendrite formation in vitro. We also report that eEF2K inhibition promotes the nuclear factor erythroid 2-related factor (NRF2) antioxidant response in neuronal cells, which was crucial for the beneficial effects of eEF2K inhibition in neurons exposed to Aβ42 oligomers. Accordingly, NRF2 knockdown or overexpression of the NRF2 inhibitor, Kelch-Like ECH-Associated Protein-1 (Keap1), significantly attenuated the neuroprotection associated with eEF2K inhibition. Finally, genetic deletion of the eEF2K ortholog efk-1 reduced oxidative stress, and improved chemotaxis and serotonin sensitivity in C. elegans expressing human Aβ42 in neurons. Taken together, these findings highlight the potential utility of eEF2K inhibition to reduce Aβ-mediated oxidative stress in AD.
Insights
Inhibiting eukaryotic elongation factor-2 kinase (eEF2K) reduces amyloid-β (Aβ) toxicity in Alzheimer
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Soluble amyloid-β (Aβ) oligomers are key contributors to Alzheimer's disease (AD) pathogenesis, impairing synaptic plasticity and neuronal function.
- Eukaryotic elongation factor-2 kinase (eEF2K) is crucial for synaptic plasticity and its activation by Aβ oligomers suggests a role in AD-related synaptic dysfunction.
- The precise role of eEF2K in AD and the therapeutic potential of its inhibition require further investigation.
Purpose of the Study:
- To investigate the role of eEF2K in Alzheimer's disease pathogenesis.
- To evaluate the therapeutic potential of eEF2K inhibition against Aβ-induced neurotoxicity.
Main Methods:
- Measured eEF2K activity in postmortem AD patient brain tissue and in transgenic AD mouse models.
- Utilized pharmacological and genetic methods to inhibit eEF2K in vitro and in vivo.
- Assessed neuroprotection, dendritic morphology, oxidative stress, and the NRF2 antioxidant pathway.
- Employed C. elegans models expressing human Aβ42 to study the effects of eEF2K ortholog deletion.
Main Results:
- eEF2K activity was elevated in AD patient brains and aged AD mouse models.
- Inhibition of eEF2K protected neurons from Aβ42 oligomer-induced toxicity and preserved dendritic structures.
- eEF2K inhibition enhanced the NRF2 antioxidant response, which was essential for neuroprotection.
- Genetic deletion of the eEF2K ortholog in C. elegans reduced oxidative stress and improved behavioral deficits.
Conclusions:
- Increased eEF2K activity is linked to Alzheimer's disease.
- Inhibiting eEF2K offers a promising therapeutic strategy for AD by reducing Aβ-mediated neurotoxicity and oxidative stress.
- The NRF2 antioxidant pathway is a critical mediator of eEF2K inhibition's neuroprotective effects.
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