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A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning

A central concept in the field of learning and memory is that NMDARs are essential for synaptic plasticity and memory formation. Surprisingly then, multiple studies have found that behavioral experience can reduce or eliminate the contribution of these receptors to learning. The cellular mechanisms...

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Autores principales: Wiltgen, Brian J., Royle, Gordon A., Gray, Erin E., Abdipranoto, Andrea, Thangthaeng, Nopporn, Jacobs, Nate, Saab, Faysal, Tonegawa, Susumu, Heinemann, Stephen F., O'Dell, Thomas J., Fanselow, Michael S., Vissel, Bryce
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2947514/
https://www.ncbi.nlm.nih.gov/pubmed/20927382
http://dx.doi.org/10.1371/journal.pone.0012818
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author Wiltgen, Brian J.
Royle, Gordon A.
Gray, Erin E.
Abdipranoto, Andrea
Thangthaeng, Nopporn
Jacobs, Nate
Saab, Faysal
Tonegawa, Susumu
Heinemann, Stephen F.
O'Dell, Thomas J.
Fanselow, Michael S.
Vissel, Bryce
author_facet Wiltgen, Brian J.
Royle, Gordon A.
Gray, Erin E.
Abdipranoto, Andrea
Thangthaeng, Nopporn
Jacobs, Nate
Saab, Faysal
Tonegawa, Susumu
Heinemann, Stephen F.
O'Dell, Thomas J.
Fanselow, Michael S.
Vissel, Bryce
author_sort Wiltgen, Brian J.
collection PubMed
description A central concept in the field of learning and memory is that NMDARs are essential for synaptic plasticity and memory formation. Surprisingly then, multiple studies have found that behavioral experience can reduce or eliminate the contribution of these receptors to learning. The cellular mechanisms that mediate learning in the absence of NMDAR activation are currently unknown. To address this issue, we examined the contribution of Ca(2+)-permeable AMPARs to learning and plasticity in the hippocampus. Mutant mice were engineered with a conditional genetic deletion of GluR2 in the CA1 region of the hippocampus (GluR2-cKO mice). Electrophysiology experiments in these animals revealed a novel form of long-term potentiation (LTP) that was independent of NMDARs and mediated by GluR2-lacking Ca(2+)-permeable AMPARs. Behavioral analyses found that GluR2-cKO mice were impaired on multiple hippocampus-dependent learning tasks that required NMDAR activation. This suggests that AMPAR-mediated LTP interferes with NMDAR-dependent plasticity. In contrast, NMDAR-independent learning was normal in knockout mice and required the activation of Ca(2+)-permeable AMPARs. These results suggest that GluR2-lacking AMPARs play a functional and previously unidentified role in learning; they appear to mediate changes in synaptic strength that occur after plasticity has been established by NMDARs.
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spelling pubmed-29475142010-10-06 A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning Wiltgen, Brian J. Royle, Gordon A. Gray, Erin E. Abdipranoto, Andrea Thangthaeng, Nopporn Jacobs, Nate Saab, Faysal Tonegawa, Susumu Heinemann, Stephen F. O'Dell, Thomas J. Fanselow, Michael S. Vissel, Bryce PLoS One Research Article A central concept in the field of learning and memory is that NMDARs are essential for synaptic plasticity and memory formation. Surprisingly then, multiple studies have found that behavioral experience can reduce or eliminate the contribution of these receptors to learning. The cellular mechanisms that mediate learning in the absence of NMDAR activation are currently unknown. To address this issue, we examined the contribution of Ca(2+)-permeable AMPARs to learning and plasticity in the hippocampus. Mutant mice were engineered with a conditional genetic deletion of GluR2 in the CA1 region of the hippocampus (GluR2-cKO mice). Electrophysiology experiments in these animals revealed a novel form of long-term potentiation (LTP) that was independent of NMDARs and mediated by GluR2-lacking Ca(2+)-permeable AMPARs. Behavioral analyses found that GluR2-cKO mice were impaired on multiple hippocampus-dependent learning tasks that required NMDAR activation. This suggests that AMPAR-mediated LTP interferes with NMDAR-dependent plasticity. In contrast, NMDAR-independent learning was normal in knockout mice and required the activation of Ca(2+)-permeable AMPARs. These results suggest that GluR2-lacking AMPARs play a functional and previously unidentified role in learning; they appear to mediate changes in synaptic strength that occur after plasticity has been established by NMDARs. Public Library of Science 2010-09-29 /pmc/articles/PMC2947514/ /pubmed/20927382 http://dx.doi.org/10.1371/journal.pone.0012818 Text en Wiltgen et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Wiltgen, Brian J.
Royle, Gordon A.
Gray, Erin E.
Abdipranoto, Andrea
Thangthaeng, Nopporn
Jacobs, Nate
Saab, Faysal
Tonegawa, Susumu
Heinemann, Stephen F.
O'Dell, Thomas J.
Fanselow, Michael S.
Vissel, Bryce
A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning
title A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning
title_full A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning
title_fullStr A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning
title_full_unstemmed A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning
title_short A Role for Calcium-Permeable AMPA Receptors in Synaptic Plasticity and Learning
title_sort role for calcium-permeable ampa receptors in synaptic plasticity and learning
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2947514/
https://www.ncbi.nlm.nih.gov/pubmed/20927382
http://dx.doi.org/10.1371/journal.pone.0012818
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