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Crucial Roles for SIRT2 and AMPA Receptor Acetylation in Synaptic Plasticity and Memory
Author(s) -
Guan Wang,
Shaomin Li,
James Gilbert,
Howard J. Gritton,
Zemin Wang,
Zhangyuan Li,
Xue Han,
Dennis J. Selkoe,
HengYe Man
Publication year - 2017
Publication title -
cell reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.264
H-Index - 154
eISSN - 2639-1856
pISSN - 2211-1247
DOI - 10.1016/j.celrep.2017.07.030
Subject(s) - sirt2 , ampa receptor , synaptic plasticity , sirtuin , acetylation , proteostasis , metaplasticity , microbiology and biotechnology , neurotransmission , internalization , long term potentiation , neuroscience , biology , chemistry , receptor , glutamate receptor , biochemistry , gene
AMPA receptors (AMPARs) mediate fast excitatory synaptic transmission and are crucial for synaptic plasticity, learning, and memory. However, the molecular control of AMPAR stability and its neurophysiological significance remain unclear. Here, we report that AMPARs are subject to lysine acetylation at their C termini. Acetylation reduces AMPAR internalization and degradation, leading to increased cell-surface localization and prolonged receptor half-life. Through competition for the same lysine residues, acetylation intensity is inversely related to the levels of AMPAR ubiquitination. We find that sirtuin 2 (SIRT2) acts as an AMPAR deacetylase regulating AMPAR trafficking and proteostasis. SIRT2 knockout mice (Sirt2 -/- ) show marked upregulation in AMPAR acetylation and protein accumulation. Both Sirt2 -/- mice and mice expressing acetylation mimetic GluA1 show aberrant synaptic plasticity, accompanied by impaired learning and memory. These findings establish SIRT2-regulated lysine acetylation as a form of AMPAR post-translational modification that regulates its turnover, as well as synaptic plasticity and cognitive function.

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