神经科学
突触可塑性
树突棘
神经传递
海马结构
谷氨酸的
阿尔茨海默病
AMPA受体
突触后电位
长时程增强
海马体
突触疲劳
生物
抑制性突触后电位
医学
受体
疾病
谷氨酸受体
兴奋性突触后电位
内科学
生物化学
作者
Marcello D’Amelio,Virve Cavallucci,Silvia Middei,Cristina Marchetti,Simone Pacioni,Alberto Ferri,Adamo Diamantini,Daniela De Zio,Paolo Carrara,Luca Battistini,Sandra Moreno,Alberto Bacci,Martine Ammassari‐Teule,Hélène Marie,Francesco Cecconi
摘要
Synaptic loss is the best pathological correlate of the cognitive decline in Alzheimer's disease; however, the molecular mechanisms underlying synaptic failure are unknown. We found a non-apoptotic baseline caspase-3 activity in hippocampal dendritic spines and an enhancement of this activity at the onset of memory decline in the Tg2576-APPswe mouse model of Alzheimer's disease. In spines, caspase-3 activated calcineurin, which in turn triggered dephosphorylation and removal of the GluR1 subunit of AMPA-type receptor from postsynaptic sites. These molecular modifications led to alterations of glutamatergic synaptic transmission and plasticity and correlated with spine degeneration and a deficit in hippocampal-dependent memory. Notably, pharmacological inhibition of caspase-3 activity in Tg2576 mice rescued the observed Alzheimer-like phenotypes. Our results identify a previously unknown caspase-3-dependent mechanism that drives synaptic failure and contributes to cognitive dysfunction in Alzheimer's disease. These findings indicate that caspase-3 is a potential target for pharmacological therapy during early disease stages.
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