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Publication : Impaired AMPA signaling and cytoskeletal alterations induce early synaptic dysfunction in a mouse model of Alzheimer's disease.

First Author  Baglietto-Vargas D Year  2018
Journal  Aging Cell Volume  17
Issue  4 Pages  e12791
PubMed ID  29877034 Mgi Jnum  J:285089
Mgi Id  MGI:6393227 Doi  10.1111/acel.12791
Citation  Baglietto-Vargas D, et al. (2018) Impaired AMPA signaling and cytoskeletal alterations induce early synaptic dysfunction in a mouse model of Alzheimer's disease. Aging Cell 17(4):e12791
abstractText  Alzheimer's disease (AD) is a devastating neurodegenerative disorder that impairs memory and causes cognitive and psychiatric deficits. New evidences indicate that AD is conceptualized as a disease of synaptic failure, although the molecular and cellular mechanisms underlying these defects remain to be elucidated. Determining the timing and nature of the early synaptic deficits is critical for understanding the progression of the disease and for identifying effective targets for therapeutic intervention. Using single-synapse functional and morphological analyses, we find that AMPA signaling, which mediates fast glutamatergic synaptic transmission in the central nervous system (CNS), is compromised early in the disease course in an AD mouse model. The decline in AMPA signaling is associated with changes in actin cytoskeleton integrity, which alters the number and the structure of dendritic spines. AMPA dysfunction and spine alteration correlate with the presence of soluble but not insoluble Abeta and tau species. In particular, we demonstrate that these synaptic impairments can be mitigated by Abeta immunotherapy. Together, our data suggest that alterations in AMPA signaling and cytoskeletal processes occur early in AD. Most important, these deficits are prevented by Abeta immunotherapy, suggesting that existing therapies, if administered earlier, could confer functional benefits.
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