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First published online on March 27, 2008.
Copyright © 2008 by The Physiological Society
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jphysiol.2007.147652v1
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Received February 28, 2008
Revised March 18, 2008
Accepted after revision March 26, 2008

Functional contributions of synaptically localized NR2B subunits of the NMDA receptor to synaptic transmission and long-term potentiation in the adult mouse CNS

Hideki Miwa1, Masahiro Fukaya2, Ayako M Watabe1, Masahiko Watanabe2, and Toshiya Manabe1*

1 University of Tokyo
2 Hokkaido University

* To whom correspondence should be addressed. E-mail: tmanabe-tky{at}umin.ac.jp.

The NMDA-type glutamate receptor is a heteromeric complex composed of the NR1 and at least one of NR2 subunits. Switching from the NR2B to NR2A subunit is thought to underlie functional alteration of the NMDA receptor during synaptic maturation, and it is generally believed that it results in preferential localization of NR2A subunits on the synaptic site and that of NR2B subunits on the extracellular site in the mature brain. It has also been proposed that activation of the NR2A and NR2B subunits results in long-term potentiation (LTP) and long-term depression (LTD), respectively. Furthermore, recent reports suggest that synaptic and extrasynaptic receptors may have distinct roles in synaptic plasticity as well as in gene expression associated with neuronal death. Here, we have investigated whether NR2B subunit-containing receptors are present and functional at mature synapses in the lateral nucleus of the amygdala (LA) and the CA1 region of the hippocampus, comparing their properties between the two brain regions. We have found, in contrast to the above hypotheses, that the NR2B subunit significantly contributes to synaptic transmission as well as LTP induction. Furthermore, its contribution is greater in the LA than in the CA1 region, and biophysical properties of NMDA receptors and the NR2B/NR2A ratio are different between the two brain regions. These results indicate that NR2B subunit-containing NMDA receptors accumulate on the synaptic site and responsible for the unique properties of synaptic function and plasticity in the amygdala.


Key words: Amygdala • NMDA receptor • Synapse







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