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Preparation of Oligomeric β-amyloid1-42 and Induction of Synaptic Plasticity Impairment on Hippocampal Slices
Published on: July 14, 2010
Submicromolar Aβ42 reduces hippocampal glutamate receptors and presynaptic markers in an aggregation-dependent manner
Meagan L Wisniewski1, Jeannie Hwang, Ben A Bahr
1University of North Carolina, Pembroke, NC, USA. meagan.wisniewski@uncp.edu
Abstract:
Synaptic pathology in Alzheimer's disease brains is thought to involve soluble Aβ42 peptide. Here, sterile incubation in PBS caused small Aβ42 oligomer formation as well as heterogeneous, 6E10-immunopositive aggregates of 80-100kDa. The high molecular weight aggregates (H-agg) formed in a time-dependent manner over an extended 30-day period. Interestingly, an inverse relationship between dimeric and H-agg formation was more evident when incubations were performed at 37°C as compared to 23°C, thus providing an experimental strategy with which to address synaptic compromise produced by the different Aβ aggregates. H-agg species formed faster and to higher levels at 37°C compared to 23°C, and the two aggregate preparations were evaluated in hippocampal slice cultures, a sensitive system for monitoring synaptic integrity. Applied daily at 80-600nM for 7days, the Aβ42 preparations caused dose-dependent and aggregation-dependent declines in α-amino-3-hydroxy-5-methyl-4-isoxazolepropionate (AMPA) and N-methyl-d-aspartate (NMDA) receptor subunits as well as in presynaptic components. Unlike the synaptic effects, Aβ42 induced only trace cellular degeneration that was CA1 specific. The 37°C preparation was less effective at decreasing synaptic markers, corresponding with its reduced levels of Aβ42 monomers and dimers. Aβ42 dimers decayed significantly faster at 37°C than 23°C, and more rapidly than monomers at either temperature. These findings indicate that Aβ42 can self-aggregate into potent synaptotoxic oligomers as well as into larger aggregates that may serve to neutralize the toxic formations. These results will add to the growing debate concerning whether high molecular weight Aβ complexes that form amyloid plaques are protective through the sequestration of oligomeric species.
Insights
Alzheimer's disease pathology involves amyloid-beta 42 (Aβ42) peptide. This study shows Aβ42 forms toxic oligomers and larger aggregates, with temperature influencing their formation and synaptic toxicity.
Area of Science:
- Neuroscience
- Biochemistry
- Pathology
Background:
- Synaptic pathology in Alzheimer's disease (AD) is linked to soluble amyloid-beta 42 (Aβ42) peptide.
- Aβ42 aggregation is a key process in AD pathogenesis.
Purpose of the Study:
- To investigate the formation of different Aβ42 aggregate species and their impact on synaptic integrity.
- To explore the role of temperature in Aβ42 aggregation and synaptotoxicity.
Main Methods:
- Sterile incubation of Aβ42 in PBS at different temperatures (23°C and 37°C) for 30 days.
- Characterization of Aβ42 aggregates using Western blotting and 6E10 immunodetection.
- Evaluation of aggregate toxicity in hippocampal slice cultures exposed to Aβ42 preparations.
Main Results:
- Aβ42 formed small oligomers and high molecular weight aggregates (H-agg) in a time-dependent manner.
- Incubation at 37°C accelerated H-agg formation and reduced dimeric Aβ42 compared to 23°C.
- Both Aβ42 preparations caused dose-dependent declines in AMPA and NMDA receptor subunits and presynaptic components, with 37°C preparations being less effective.
Conclusions:
- Aβ42 self-aggregates into synaptotoxic oligomers and potentially protective larger aggregates.
- Temperature significantly influences Aβ42 aggregation kinetics and the resulting synaptotoxicity.
- High molecular weight Aβ complexes may sequester toxic oligomers, contributing to the ongoing debate on amyloid plaque function in AD.

