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The Transient Receptor Potential Melastatin 2 (TRPM2) Channel Contributes to β-Amyloid Oligomer-Related Neurotoxicity
Valeriy G Ostapchenko1, Megan Chen2, Monica S Guzman1
1Molecular Medicine, Robarts Research Institute, Department of Physiology and Pharmacology, Schulich School of Medicine, and.
Abstract:
In Alzheimer's disease, accumulation of soluble oligomers of β-amyloid peptide is known to be highly toxic, causing disturbances in synaptic activity and neuronal death. Multiple studies relate these effects to increased oxidative stress and aberrant activity of calcium-permeable cation channels leading to calcium imbalance. The transient receptor potential melastatin 2 (TRPM2) channel, a Ca(2+)-permeable nonselective cation channel activated by oxidative stress, has been implicated in neurodegenerative diseases, and more recently in amyloid-induced toxicity. Here we show that the function of TRPM2 is augmented by treatment of cultured neurons with β-amyloid oligomers. Aged APP/PS1 Alzheimer's mouse model showed increased levels of endoplasmic reticulum stress markers, protein disulfide isomerase and phosphorylated eukaryotic initiation factor 2α, as well as decreased levels of the presynaptic marker synaptophysin. Elimination of TRPM2 in APP/PS1 mice corrected these abnormal responses without affecting plaque burden. These effects of TRPM2 seem to be selective for β-amyloid toxicity, as ER stress responses to thapsigargin or tunicamycin in TRPM2(-/-) neurons was identical to that of wild-type neurons. Moreover, reduced microglial activation was observed in TRPM2(-/-)/APP/PS1 hippocampus compared with APP/PS1 mice. In addition, age-dependent spatial memory deficits in APP/PS1 mice were reversed in TRPM2(-/-)/APP/PS1 mice. These results reveal the importance of TRPM2 for β-amyloid neuronal toxicity, suggesting that TRPM2 activity could be potentially targeted to improve outcomes in Alzheimer's disease.
Significance Statement:
Transient receptor potential melastatin 2 (TRPM2) is an oxidative stress sensing calcium-permeable channel that is thought to contribute to calcium dysregulation associated with neurodegenerative diseases, including Alzheimer's disease. Here we show that oligomeric β-amyloid, the toxic peptide in Alzheimer's disease, facilitates TRPM2 channel activation. In mice designed to model Alzheimer's disease, genetic elimination of TRPM2 normalized deficits in synaptic markers in aged mice. Moreover, the absence of TRPM2 improved age-dependent spatial memory deficits observed in Alzheimer's mice. Our results reveal the importance of TRPM2 for neuronal toxicity and memory impairments in an Alzheimer's mouse model and suggest that TRPM2 could be targeted for the development of therapeutic agents effective in the treatment of dementia.
Insights
Targeting the TRPM2 channel may offer a new therapeutic strategy for Alzheimer's disease. Eliminating TRPM2 in mouse models reversed memory deficits and normalized synaptic markers, suggesting its role in amyloid-beta toxicity.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Alzheimer's disease (AD) is characterized by beta-amyloid (Aβ) oligomer accumulation, leading to synaptic dysfunction and neuronal death.
- Oxidative stress and calcium imbalance are implicated in AD pathogenesis, with TRPM2 channels activated by oxidative stress.
- TRPM2 channels have been linked to neurodegeneration and amyloid-induced toxicity.
Purpose of the Study:
- To investigate the role of the TRPM2 channel in Aβ-induced neuronal toxicity and cognitive deficits in an AD mouse model.
- To determine if eliminating TRPM2 can ameliorate AD-related pathology and memory impairments.
Main Methods:
- Cultured neurons were treated with Aβ oligomers to assess TRPM2 function.
- APP/PS1 AD mouse models were used, with some genetically modified to lack TRPM2 (TRPM2(-/-)).
- Evaluated endoplasmic reticulum (ER) stress markers, synaptic markers, microglial activation, and spatial memory.
Main Results:
- Aβ oligomers augmented TRPM2 channel function in cultured neurons.
- TRPM2(-/-)/APP/PS1 mice showed normalized ER stress and synaptic markers compared to APP/PS1 mice, without changes in plaque load.
- Absence of TRPM2 reduced microglial activation and reversed age-dependent spatial memory deficits in the AD mouse model.
- TRPM2's role in toxicity appeared selective for Aβ, as ER stress responses to other stimuli were unaffected.
Conclusions:
- TRPM2 channel activation is facilitated by oligomeric Aβ, contributing to neuronal toxicity and memory impairments in AD.
- Genetic elimination of TRPM2 in an AD mouse model rescues synaptic deficits and spatial memory impairments.
- TRPM2 represents a potential therapeutic target for Alzheimer's disease treatment.
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