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The Lack of Amyloidogenic Activity Is Persistent in Old WT and APPswe/PS1ΔE9 Mouse Retinae
Sandrine Joly1,2, Léa Rodriguez1, Vincent Pernet1,3
1Centre de Recherche du CHU de Québec-Université Laval and Department of Molecular Medicine, Faculty of Medicine, Université Laval, Quebec, QC G1V 4G2, Canada.
Abstract:
We have previously reported that vision decline was not associated with amyloidogenesis processing in aging C57BL/6J wild-type (WT) mice and in a mouse model of Alzheimer's disease, the APPswe/PS1ΔE9 transgenic mouse model (APP/PS1). This conclusion was drawn using middle-aged (10-13 months old) mice. Here, we hypothesized that compared with hippocampal and cortical neurons, the weak amyloidogenic activity of retinal neurons may result in a detectable release of amyloid β (Aβ) only in aged mice, i.e., between 14 and 24 months of age. The aim of the present study was thus to follow potential activity changes in the amyloidogenic and nonamyloidogenic pathways of young (4 months) and old (20-24 months) WT and APP/PS1 mice. Our results showed that in spite of retinal activity loss reported by electroretinogram (ERG) recordings, the level of amyloid beta precursor protein (APP) and its derivatives did not significantly vary in the eyes of old vs. young mice. Strikingly, the ectopic expression of human APPswe in APP/PS1 mice did not allow us to detect Aβ monomers at 23 months. In contrast, Aβ was observed in hippocampal and cortical tissues at this age but not at 4 months of life. In contrast, optic nerve transection-induced retinal ganglion cell injury significantly affected the level of retinal APP and the secretion of soluble APP alpha in the vitreous. Collectively, these results suggest that the amyloidogenic and nonamyloidogenic pathways are not involved in visual function decline in aging mice. In WT and APP/PS1 mice, it is proposed that retinal neurons do not have the capacity to secrete Aβ in contrast with other cortical and hippocampal neurons.
Insights
Aging vision decline is not linked to amyloid pathways in mouse retinas. Even in aged mice and Alzheimer
Area of Science:
- Neuroscience
- Ophthalmology
- Molecular Biology
Background:
- Previous studies indicated no link between vision decline and amyloidogenesis in middle-aged mice.
- Retinal neurons may exhibit lower amyloidogenic activity compared to brain neurons.
Purpose of the Study:
- To investigate age-related changes in amyloidogenic and nonamyloidogenic pathways in mouse retinas.
- To determine if amyloid-beta (Aβ) is detectable in aged mouse retinas and its association with visual function.
Main Methods:
- Comparative analysis of young (4 months) and old (20-24 months) wild-type (WT) and APP/PS1 mice.
- Electroretinogram (ERG) recordings to assess retinal function.
- Measurement of amyloid precursor protein (APP) and its derivatives in ocular tissues.
- Analysis of Aβ levels in retinal, hippocampal, and cortical tissues.
- Investigation of retinal ganglion cell injury effects on APP and Aβ.
Main Results:
- Retinal activity loss (via ERG) in old mice did not correlate with significant changes in retinal APP levels.
- Ectopic expression of human APPswe in APP/PS1 mice did not yield detectable Aβ monomers in the eyes at 23 months.
- Aβ was detected in hippocampal and cortical tissues of aged mice, but not in young mice.
- Retinal ganglion cell injury induced by optic nerve transection altered retinal APP levels and soluble APP alpha secretion.
Conclusions:
- The amyloidogenic and nonamyloidogenic pathways are not implicated in age-related visual function decline in mice.
- Retinal neurons appear incapable of secreting Aβ, unlike hippocampal and cortical neurons.
- Age-related vision loss in mice is independent of amyloid processing within retinal neurons.
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