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Quantitative 3D In Silico Modeling (q3DISM) of Cerebral Amyloid-beta Phagocytosis in Rodent Models of Alzheimer's Disease
Published on: December 26, 2016
Quantitative reverse-transcription polymerase chain reaction analysis of Alzheimer's-associated genes in mouse
Sarah Medina1, Avril Hatherall, Debra Parchaliuk
1Molecular PathoBiology, National Microbiology Laboratory, Public Health Agency of Canada, Winnipeg, Manitoba, Canada.
Abstract:
Prion and Alzheimer's diseases are two apparently distinct disorders; however, the two proteinaceous species implicated in disease progression share a number of common features. In prion diseases a beta-rich conformer of the prion protein is the key molecule in the pathogenesis of prion disease, whereas in Alzheimer's disease neurotoxicity is associated with the amyloid-beta peptide. These two molecules share common structural features and post-translational processing events and both undergo structural transition from normal host proteins to a form associated with toxicity, which leads to neurodegeneration. The precise mechanisms leading to neuronal damage and death that are triggered in these diseases are as yet unknown. It is possible, however, that there is a convergence of events in the neurons whereby similar pathways are executed. In this study the expression of a panel of 94 genes associated with the development of Alzheimer's disease was examined using a high-throughput real-time quantitative reverse-transcription polymerase chain reaction (RT-PCR) assay. Data showed that approximately 31 of these genes are deregulated in the brains of scrapie-infected mice. Among these were genes involved in inflammation, post-translational processing, excitotoxicity, cholesterol metabolism, and neuroprotection. One of the genes showing the greatest degree of upregulation was the cell cycle regulator CDC2. A microarray analysis also revealed deregulation of CDC2 and related genes, including cyclin B and cyclin D, suggesting that in prion disease, as in Alzheimer's disease, misregulation of cell cycle regulators may contribute to neurodegeneration.
Insights
Prion and Alzheimer's diseases share common pathways. Scrapie-infected mouse brains showed deregulation of 31 Alzheimer's-associated genes, including cell cycle regulators like CDC2, suggesting shared neurodegenerative mechanisms.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Prion and Alzheimer's diseases involve misfolded proteins (prion protein and amyloid-beta peptide, respectively) leading to neurodegeneration.
- Both diseases share structural similarities and post-translational modifications in disease-associated proteins.
- The exact mechanisms of neuronal damage in these proteinopathies remain unclear.
Purpose of the Study:
- To investigate potential shared molecular pathways between prion and Alzheimer's diseases.
- To examine the expression of Alzheimer's disease-associated genes in a mouse model of prion disease (scrapie).
Main Methods:
- Utilized a high-throughput real-time quantitative reverse-transcription polymerase chain reaction (RT-PCR) assay to analyze 94 Alzheimer's disease-related genes.
- Performed microarray analysis to further investigate gene expression, focusing on cell cycle regulators.
Main Results:
- Approximately 31 of the 94 examined genes were found to be deregulated in the brains of scrapie-infected mice.
- Upregulated genes were involved in critical cellular processes including inflammation, post-translational processing, excitotoxicity, cholesterol metabolism, and neuroprotection.
- The cell cycle regulator CDC2 showed significant upregulation, along with related genes like cyclin B and cyclin D.
Conclusions:
- Prion disease shares molecular pathways with Alzheimer's disease, indicated by the deregulation of similar genes.
- Misregulation of cell cycle regulators, such as CDC2, may play a role in neurodegeneration in prion disease, mirroring observations in Alzheimer's disease.
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