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Published on: April 19, 2021
Shared early molecular mechanisms revealed in P301S and 5xFAD Alzheimer's disease mouse models
Huda Suloh1, Shashank Kumar Ojha1, Maryam Kartawy1
1Institute for Drug Research, School of Pharmacy, Faculty of Medicine, The Hebrew University of Jerusalem, Jerusalem, Israel.
Abstract:
Alzheimer's disease (AD) is the most common neurodegenerative disorder characterized by early molecular events that influence disease progression. Still, the molecular mechanisms caused by different mutations of AD are not understood. We have performed a multidisciplinary study to investigate and compare the early stages of the pathology in two transgenic AD mouse models: P301S and 5xFAD. Using SNOTRAP-based mass spectrometry, we assessed changes in S-nitrosylation, a nitric oxide-mediated post-translational modification, of proteins in both models during their juvenile age. The increased levels of 3-nitrotyrosine confirmed nitrosative stress in the mutant mice. Systems biology analysis revealed shared processes between the models, particularly in the γ-aminobutyric acid (GABA)ergic and glutamatergic neurotransmission processes. In the P301S model, we identified 273 S-nitrosylated (SNOed) proteins in the cortex, with 244 proteins uniquely SNOed in the diseased mice. In the 5xFAD model, 309 SNOed proteins were identified. We have found altered proteins expression of different glutamate/GABA-related markers in the cortex and hippocampus of both AD mouse models. Additionally, the phosphorylation levels of the mTOR signaling components revealed hyperactivation of this pathway in P301S mice. Conversely, 5xFAD mice showed no significant changes in mTOR signaling except for elevated phosphorylation of the ribosomal protein S6 in the cortex. Our findings revealed key molecular mechanisms in the two AD mouse models during their early stages. These mechanisms could serve as potential biomarkers and therapeutic targets for early-stage AD.
Insights
This study compared early Alzheimer
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Alzheimer's disease (AD) is a leading neurodegenerative disorder, but its early molecular mechanisms remain unclear.
- Understanding early molecular events is crucial for identifying therapeutic targets and biomarkers for AD.
Purpose of the Study:
- To investigate and compare the early pathological molecular mechanisms in two distinct Alzheimer's disease mouse models (P301S and 5xFAD).
- To identify changes in protein S-nitrosylation and related signaling pathways during the juvenile stage of AD.
Main Methods:
- Utilized SNOTRAP-based mass spectrometry to assess S-nitrosylation changes in proteins.
- Employed systems biology analysis to identify shared and unique molecular processes.
- Measured 3-nitrotyrosine levels to confirm nitrosative stress and analyzed mTOR signaling pathway components.
Main Results:
- Confirmed nitrosative stress in both P301S and 5xFAD models, with significant S-nitrosylation changes observed.
- Identified shared alterations in GABAergic and glutamatergic neurotransmission processes across both models.
- P301S mice showed mTOR pathway hyperactivation, while 5xFAD mice exhibited specific ribosomal protein S6 phosphorylation changes.
Conclusions:
- Revealed distinct and shared early molecular mechanisms in P301S and 5xFAD Alzheimer's disease models.
- Identified altered neurotransmission and signaling pathways as potential early biomarkers and therapeutic targets for Alzheimer's disease.
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