Effects of Low Amyloid-β (Aβ) Concentration on Aβ1-42 Oligomers Binding and GluN2B Membrane Expression
Virginie Gilson1,2, Corinne Mbebi-Liegeois1,3, François Sellal2,4
1Institut des Neurosciences Cellulaires et Intégratives-CNRS, Strasbourg, France.
Abstract:
Numerous studies have shown that amyloid-β (Aβ) modulate intracellular metabolic cascades and an intracellular Ca2+ homeostasis and a cell surface NMDA receptor expression alteration in Alzheimer's disease (AD). However most of these findings have been obtained by using non-physiological Aβ concentrations. The present study deals with the effect of low Aβ concentrations on cellular homeostasis. We used nerve growth factor-differentiated PC12 cells and murine cortical neurons sequentially treated with low chronic monomeric or small oligomeric Aβ concentrations and high acute oligomeric Aβ concentrations to bring out a priming effect of chronic treatment on subsequently high Aβ concentrations-elicited cellular response. Both cell types indeed displayed an enhanced capacity to bind oligomeric Aβ after monomeric or small oligomeric Aβ application. Furthermore, the results show that monomeric Aβ1-42 application to the cells induces an increase of the Ca2+-response and of the membrane expression of the extrasynaptic subunit of the NMDA receptor GluN2B in PC12 cells, while the opposite effects were observed in cultured neurons. This suggests a sequential interaction of Aβ with the cellular plasma membrane involving monomers or small Aβ oligomers which would facilitate the binding of the deleterious high molecular Aβ oligomers. This mechanism would explain the slow progression of AD in the human nervous system and the deep gradient of neuronal death observed around the amyloid plaques in the nervous tissue.
Insights
Low amyloid-beta (Aβ) concentrations prime neurons to bind more Aβ, affecting calcium and NMDA receptor responses. This explains Alzheimer's disease progression and neuronal death patterns around plaques.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Alzheimer's disease (AD) is linked to amyloid-beta (Aβ) affecting cellular metabolism, calcium (Ca2+) homeostasis, and NMDA receptor expression.
- Previous studies often used non-physiological Aβ concentrations, limiting understanding of early-stage disease mechanisms.
Purpose of the Study:
- To investigate the impact of low, chronic amyloid-beta (Aβ) concentrations on cellular homeostasis.
- To explore the priming effect of low Aβ exposure on neuronal response to high Aβ concentrations.
Main Methods:
- Utilized nerve growth factor-differentiated PC12 cells and murine cortical neurons.
- Applied sequential treatments with low chronic monomeric/oligomeric Aβ and high acute oligomeric Aβ.
Main Results:
- Both cell types showed increased oligomeric Aβ binding after chronic low Aβ exposure.
- Monomeric Aβ1-42 increased Ca2+ response and GluN2B expression in PC12 cells but decreased them in neurons.
- Suggests a sequential Aβ interaction mechanism involving monomers/small oligomers facilitating larger oligomer binding.
Conclusions:
- Aβ monomers and small oligomers may prime neuronal membranes for subsequent binding of toxic Aβ oligomers.
- This priming mechanism could explain the slow Alzheimer's disease progression and localized neuronal death around plaques.
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