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Updated: Aug 30, 2026

Motor and Hippocampal Dependent Spatial Learning and Reference Memory Assessment in a Transgenic Rat Model of Alzheimer's Disease with Stroke
Published on: March 22, 2016
PS2APP transgenic mice, coexpressing hPS2mut and hAPPswe, show age-related cognitive deficits associated with
J Grayson Richards1, Guy A Higgins, Abdel-Mouttalib Ouagazzal
1Department of Pharma Research Biology Discovery and Roche Center for Medical Genomics, F. Hoffmann-La Roche Ltd., CH-4070 Basel, Switzerland. richards@balcab.ch
Abstract:
Transgenic mice, expressing mutant beta-amyloid precursor proteins (betaAPPs), have lead to a better understanding of the pathophysiological processes in Alzheimer's disease (AD). In many of these models, however, the temporal development of cognitive decline and the relationship to Abeta deposition and inflammation are unclear. We now report a novel transgenic mouse line, PS2APP (PS2N141I x APPswe), which develops a severe cerebral amyloidosis in discrete brain regions, and present a cross-sectional analysis of these mice at 4, 8, 12, and 16 months of age. Each age cohort was investigated for changes in behavior, electrophysiology of synapse efficacy, ELISA-determined Abeta load, histopathology, and in immunoelectron microscopy. Cognitive deficits were first observed at 8 months when Abeta deposits and inflammation were restricted to discrete brain regions, namely the subiculum and frontolateral (motor and orbital) cortex. As early as 5 months, electron microscopy revealed the presence, in these regions, of pre-plaque, immunogold-labeled extracellular fibrillar Abeta. At the same age, increased levels of insoluble Abeta were detected by ELISA, with Abeta1-40 levels exceeding those of Abeta1-42. Further cognitive decline occurred in an age-related manner, and this was accompanied by the spread of amyloidosis to ultimately affect not only neo- and limbic cortices, but also thalamic and pontine nuclei. Dentate gyrus post-tetanic potentiation was significantly attenuated at 17 months, and there were also significant differences in paired-pulse parameters. This systematic cross-sectional study of the behavioral and pathological changes in the PS2APP mouse indicates that it develops age-related cognitive decline associated with severe amyloidosis and inflammation in discrete brain regions and therefore is suitable for testing a range of potential symptomatic and disease-modifying therapies for AD.
Insights
A new transgenic mouse model, PS2APP, shows early cognitive decline linked to amyloid-beta deposition and inflammation. This model is suitable for testing Alzheimer's disease therapies.
Area of Science:
- Neuroscience
- Pathology
- Genetics
Background:
- Transgenic mouse models expressing mutant beta-amyloid precursor proteins (betaAPPs) advance Alzheimer's disease (AD) research.
- The temporal progression of cognitive deficits and their relation to Abeta deposition and inflammation remain unclear in many existing models.
Purpose of the Study:
- To characterize a novel transgenic mouse line, PS2APP (PS2N141I x APPswe), for its utility in studying Alzheimer's disease.
- To analyze the temporal development of cognitive decline, Abeta deposition, and inflammation in PS2APP mice.
Main Methods:
- Cross-sectional analysis of PS2APP mice at 4, 8, 12, and 16 months of age.
- Assessment of behavioral changes, synaptic electrophysiology, Abeta load (ELISA), histopathology, and immunoelectron microscopy.
Main Results:
- Cognitive deficits emerged by 8 months, correlating with localized Abeta deposits and inflammation in the subiculum and frontolateral cortex.
- Electron microscopy detected extracellular fibrillar Abeta as early as 5 months, preceding plaque formation.
- Age-related cognitive decline progressed with amyloidosis spreading to multiple brain regions, accompanied by attenuated synaptic function.
Conclusions:
- The PS2APP mouse model exhibits age-related cognitive decline, severe amyloidosis, and inflammation, mirroring key aspects of Alzheimer's disease.
- This model is well-suited for evaluating potential symptomatic and disease-modifying treatments for Alzheimer's disease.

