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Alzheimer disease: mouse models pave the way for therapeutic opportunities
G Emilien1, J M Maloteaux, K Beyreuther
1The Laboratory of Pharmacology, Université Catholique de Louvain, Cliniques Universitaires Saint Luc, Brussels, Belgium. GEmilien@aol.com
Abstract:
Research into the molecular mechanisms of Alzheimer disease (AD) continues to clarify important issues in aberrant protein processing while seeking to identify therapeutic targets. Mutations of genes on chromosomes 1, 14 (presenilins 1 and 2), and 21 (the amyloid-beta [Abeta] amyloid precursor protein [APP]) cause the familial forms of AD that often begin before age 65. An allelic polymorphism on chromosome 19 (apolipoprotein E ) affects the age of onset of the more common forms of sporadic AD. Multiple studies in transgenic mice provide strong evidence to support the view that Abeta amyloid formation is an early and critical pathogenic event: mice expressing pathogenic human APP mutations develop Abeta deposits; coexpression of mutant presenilin genes accelerates the rate of Abeta deposition; and apolipoprotein E plays a role in this process. Thus, the 3 established genetic causes or risk factors for AD affect Abeta deposition. The fact that elevation of the Abeta42/Abeta40 ratio (differing only in 2 amino acids in length) is also linked to amyloid deposition in the APP mice and is temporally linked to cognitive impairment suggests that Abeta42 may be a principal inducing factor of AD. The exact sequence of events is still unknown, but the transgenic models generated so far have shown their usefulness in clarifying this complex part of the pathology. The continuing progress in elucidation of the molecular pathogenesis of AD suggests a range of rational pharmacological interventions for this disorder. The most promising strategy involves the development of approaches to retard, halt, or prevent Abeta-mediated disease progression, and these can now be tested in transgenic animals.
Insights
Alzheimer disease research clarifies aberrant protein processing and identifies therapeutic targets. Genetic factors influencing amyloid-beta deposition are key to understanding and treating AD.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Alzheimer disease (AD) research focuses on molecular mechanisms and aberrant protein processing.
- Familial AD is linked to mutations in APP, PSEN1, and PSEN2 genes.
- Apolipoprotein E (APOE) polymorphism influences sporadic AD onset.
Purpose of the Study:
- To investigate the role of genetic factors in amyloid-beta (Abeta) deposition in Alzheimer disease.
- To explore the significance of the Abeta42/Abeta40 ratio in AD pathogenesis.
- To evaluate the utility of transgenic mouse models in understanding AD molecular pathology.
Main Methods:
- Analysis of genetic mutations associated with familial AD (APP, PSEN1, PSEN2).
- Investigation of apolipoprotein E's role in sporadic AD.
- Studies using transgenic mice expressing human APP mutations and co-expressing presenilin genes.
- Monitoring Abeta deposition and cognitive function in transgenic models.
Main Results:
- Transgenic mice with APP mutations develop Abeta deposits.
- Co-expression of mutant presenilin genes accelerates Abeta deposition.
- Apolipoprotein E influences Abeta deposition.
- Elevated Abeta42/Abeta40 ratio correlates with amyloid deposition and cognitive impairment.
Conclusions:
- The three established genetic factors for AD directly impact Abeta deposition.
- Abeta42 may be a primary factor inducing Alzheimer disease.
- Transgenic models are valuable tools for elucidating AD molecular pathogenesis.
- Pharmacological interventions targeting Abeta-mediated progression are promising therapeutic strategies for AD.