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Grounds, K.

Publications and source records attributed to Grounds, K..

2 recordsLinked to original sources

Unexpected Early Proteomic Changes in Alzheimer’s Disease Model Mice Synaptosomes

We have employed label-free quantitative proteomics of wild-type and Alzheimers disease (AD) model mice synaptosomes to investigate proteomic changes occurring during AD progression as a prelude to analysis in humans. More than 4000 proteins were analyzed using multiple analysis tools and statistical criteria. Pathway enrichment identified numerous pathways consistent with the current AD knowledge base, including dysregulation of Glutamate Receptor Signaling, Synaptic Long Term Potentiation and Depression, Rho and Rac Signaling, Calcium Signaling, and Oxidative Phosphorylation and Mitochondrial Dysfunction. Additionally, the data demonstrate that a large number of changes occur in the proteome very early relative to the onset of both traditional disease markers such as amyloid accumulation, tau phosphorylation and cognitive dysfunction. These early changes include a number of dysregulated proteins that have novel associations with AD progression. These results reinforce the importance of mechanistic investigations in early disease progression long before the classical markers of Alzheimers disease are observed.

neuroscience

Synaptophysin is a β-Amyloid Target that Regulates Synaptic Plasticity and Seizure Susceptibility in an Alzhiemer’s Model

Intro/abstractAlzheimers disease (AD), a condition characterized by cognitive deficits and progressive loss of memory, is causally linked to the short amyloid peptide A{beta}42, which disrupts normal neurotransmission1,2. Neurotransmitter (NT) release from synaptic vesicles (SV) requires coordinated binding of the conserved core secretory machinery comprised of the soluble NSF attachment protein receptor (vSNARE) synaptobrevin 2 (VAMP2) on the SV and the cognate tSNAREs on the plasma membrane. Synaptophysin (SYP) is the most abundant SV protein3 and the major pre-fusion binding partner of VAMP24. A major challenge in understanding the etiology and prevention of AD is determining the proteins directly targeted by A{beta}42 and elucidating if these targets mediate disease phenotypes. Here we demonstrate that A{beta}42 binds to SYP with picomolar affinity and disrupts the SYP/VAMP2 complex resulting in inhibition of both neurotransmitter release and synaptic plasticity. While functionally redundant paralogs of SYP have masked its critical activity in knockout studies5,6, we now demonstrate a profound seizure susceptibility phenotype in SYP knockout mice that is recapitulated in an AD model mouse. Our studies imply a subtle yet critical role for SYP in the synaptic vesicle cycle and the etiology of AD.

neuroscience