An increased excitation and inhibition onto CA1 pyramidal cells sets the path to Alzheimer s disease
Scimemi, A.; Wehrle, P.; Rathwell, T.; Petroccione, M.; Caiazza, E.; Manning, A.; Frasson dos Reis, L.; Todd, G.; Affinnih, N.; Ahmad, S.; Mehdi, H.; Tschang, I.; Hassan, U.; Tsakh, B.; Darvas, M.; Cook, D.
Show abstract
Synapses are critical targets of Alzheimers disease (AD), a highly prevalent neurodegenerative disease associated with accumulation of extracellular amyloid-{beta} peptides. Although amyloidosis and aggregation of the 42-amino acid amyloid-{beta} (A{beta}42) have long been considered pathogenic triggers for AD, clinical evidence linking high levels of A{beta}42 with normal cognition challenges this hypothesis. To resolve this conundrum on the role of A{beta}42 in regulating synaptic activity, we used an adeno-associated viral vector approach that triggers extracellular accumulation of A{beta}42 and spatial memory impairment. We show that A{beta}42 leads to an early increase in excitatory and proximal inhibitory synaptic transmission onto hippocampal CA1 pyramidal cells, and an increased expression of the glutamate transporter GLT-1 in these cells. A{beta}42 accumulation does not cause early cognitive deficits unless accompanied by an increased neuronal GLT-1 expression, suggesting this transporter is a critical mediator of A{beta}42s effects. These findings unveil key molecular and cellular mechanisms implicated with AD pathogenesis.
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