Aβ induces astrocytic glutamate release, extrasynaptic NMDA receptor activation, and synaptic loss.

TitleAβ induces astrocytic glutamate release, extrasynaptic NMDA receptor activation, and synaptic loss.
Publication TypeJournal Article
Year of Publication2013
AuthorsTalantova M, Sanz-Blasco S, Zhang X, Xia P, Akhtar MWaseem, Okamoto S-ichi, Dziewczapolski G, Nakamura T, Cao G, Pratt AE, Kang Y-J, Tu S, Molokanova E, McKercher SR, Hires SAndrew, Sason H, Stouffer DG, Buczynski MW, Solomon JP, Michael S, Powers ET, Kelly JW, Roberts A, Tong G, Fang-Newmeyer T, Parker J, Holland EA, Zhang D, Nakanishi N, Chen H-SVincent, Wolosker H, Wang Y, Parsons LH, Ambasudhan R, Masliah E, Heinemann SF, Piña-Crespo JC, Lipton SA
JournalProc Natl Acad Sci U S A
Volume110
Issue27
PaginationE2518-27
Date Published2013 Jul 02
ISSN1091-6490
Keywordsalpha7 Nicotinic Acetylcholine Receptor, Alzheimer Disease, Amyloid beta-Peptides, Animals, Astrocytes, Coculture Techniques, Female, Fluorescence Resonance Energy Transfer, Glutamic Acid, HEK293 Cells, Hippocampus, Humans, Male, Mice, Mice, Transgenic, Neural Inhibition, Peptide Fragments, Rats, Receptors, N-Methyl-D-Aspartate, Receptors, Nicotinic, Synapses
Abstract

Synaptic loss is the cardinal feature linking neuropathology to cognitive decline in Alzheimer's disease (AD). However, the mechanism of synaptic damage remains incompletely understood. Here, using FRET-based glutamate sensor imaging, we show that amyloid-β peptide (Aβ) engages α7 nicotinic acetylcholine receptors to induce release of astrocytic glutamate, which in turn activates extrasynaptic NMDA receptors (eNMDARs) on neurons. In hippocampal autapses, this eNMDAR activity is followed by reduction in evoked and miniature excitatory postsynaptic currents (mEPSCs). Decreased mEPSC frequency may reflect early synaptic injury because of concurrent eNMDAR-mediated NO production, tau phosphorylation, and caspase-3 activation, each of which is implicated in spine loss. In hippocampal slices, oligomeric Aβ induces eNMDAR-mediated synaptic depression. In AD-transgenic mice compared with wild type, whole-cell recordings revealed excessive tonic eNMDAR activity accompanied by eNMDAR-sensitive loss of mEPSCs. Importantly, the improved NMDAR antagonist NitroMemantine, which selectively inhibits extrasynaptic over physiological synaptic NMDAR activity, protects synapses from Aβ-induced damage both in vitro and in vivo.

DOI10.1073/pnas.1306832110
Alternate JournalProc Natl Acad Sci U S A
PubMed ID23776240
Grant ListP01 AG010436 / AG / NIA NIH HHS / United States
P01 HD29587 / HD / NICHD NIH HHS / United States
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