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October 4, 2006Journal of Neuroscience3,635 citationsOpen Access

Intraneuronal β-Amyloid Aggregates, Neurodegeneration, and Neuron Loss in Transgenic Mice with Five Familial Alzheimer's Disease Mutations: Potential Factors in Amyloid Plaque Formation

HOHolly D. OakleySCSarah L. ColeSLSreemathi Logan

Key Points

  • To generate and characterize an accelerated transgenic mouse model coexpressing five familial Alzheimer's disease mutations to investigate cerebral Aβ42 accumulation, plaque formation, and neurodegeneration.
  • Generated APP/PS1 double transgenic mice coexpressing five familial Alzheimer's disease mutations (5XFAD) to selectively increase Aβ42 production.
  • Evaluated brain pathology across ages using thioflavin S staining for intraneuronal aggregates, assays for synaptic markers and p25, neuronal quantification in the subiculum and cortex, and Y-maze behavioral testing.
  • Intraneuronal Aβ42 aggregation began at 1.5 months, followed by rapid amyloid deposition and gliosis starting at 2 months, particularly in the subiculum and deep cortical layers.
  • Mice showed progressive loss of synaptic markers (synaptophysin, syntaxin, and PSD-95), significant loss of large pyramidal neurons in cortical layer 5 and subiculum, and significantly elevated p25 levels by 9 months.
  • 5XFAD mice exhibited pronounced memory impairment in Y-maze behavioral testing corresponding with progressive neurodegenerative pathology.

Abstract

Mutations in the genes for amyloid precursor protein (APP) and presenilins (PS1, PS2) increase production of beta-amyloid 42 (Abeta42) and cause familial Alzheimer's disease (FAD). Transgenic mice that express FAD mutant APP and PS1 overproduce Abeta42 and exhibit amyloid plaque pathology similar to that found in AD, but most transgenic models develop plaques slowly. To accelerate plaque development and investigate the effects of very high cerebral Abeta42 levels, we generated APP/PS1 double transgenic mice that coexpress five FAD mutations (5XFAD mice) and additively increase Abeta42 production. 5XFAD mice generate Abeta42 almost exclusively and rapidly accumulate massive cerebral Abeta42 levels. Amyloid deposition (and gliosis) begins at 2 months and reaches a very large burden, especially in subiculum and deep cortical layers. Intraneuronal Abeta42 accumulates in 5XFAD brain starting at 1.5 months of age (before plaques form), is aggregated (as determined by thioflavin S staining), and occurs within neuron soma and neurites. Some amyloid deposits originate within morphologically abnormal neuron soma that contain intraneuronal Abeta. Synaptic markers synaptophysin, syntaxin, and postsynaptic density-95 decrease with age in 5XFAD brain, and large pyramidal neurons in cortical layer 5 and subiculum are lost. In addition, levels of the activation subunit of cyclin-dependent kinase 5, p25, are elevated significantly at 9 months in 5XFAD brain, although an upward trend is observed by 3 months of age, before significant neurodegeneration or neuron loss. Finally, 5XFAD mice have impaired memory in the Y-maze. Thus, 5XFAD mice rapidly recapitulate major features of AD amyloid pathology and may be useful models of intraneuronal Abeta42-induced neurodegeneration and amyloid plaque formation.

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Cite This Study

Oakley et al. (2006) studied this question.

synapsesocial.com/papers/69d8a882a5ecc596b5d18127https://doi.org/10.1523/jneurosci.1202-06.2006
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