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Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors

The structural and functional plasticity of synapses is critical for learning and memory. Long-term potentiation (LTP) induction promotes spine growth and AMPAR accumulation at excitatory synapses, leading to increased synaptic strength. Glutamate initiates these processes, but the contribution from...

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Autores principales: McLeod, Faye, Bossio, Alessandro, Marzo, Aude, Ciani, Lorenza, Sibilla, Sara, Hannan, Saad, Wilson, Gemma A., Palomer, Ernest, Smart, Trevor G., Gibb, Alasdair, Salinas, Patricia C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5946458/
https://www.ncbi.nlm.nih.gov/pubmed/29694885
http://dx.doi.org/10.1016/j.celrep.2018.03.119
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author McLeod, Faye
Bossio, Alessandro
Marzo, Aude
Ciani, Lorenza
Sibilla, Sara
Hannan, Saad
Wilson, Gemma A.
Palomer, Ernest
Smart, Trevor G.
Gibb, Alasdair
Salinas, Patricia C.
author_facet McLeod, Faye
Bossio, Alessandro
Marzo, Aude
Ciani, Lorenza
Sibilla, Sara
Hannan, Saad
Wilson, Gemma A.
Palomer, Ernest
Smart, Trevor G.
Gibb, Alasdair
Salinas, Patricia C.
author_sort McLeod, Faye
collection PubMed
description The structural and functional plasticity of synapses is critical for learning and memory. Long-term potentiation (LTP) induction promotes spine growth and AMPAR accumulation at excitatory synapses, leading to increased synaptic strength. Glutamate initiates these processes, but the contribution from extracellular modulators is not fully established. Wnts are required for spine formation; however, their impact on activity-mediated spine plasticity and AMPAR localization is unknown. We found that LTP induction rapidly increased synaptic Wnt7a/b protein levels. Acute blockade of endogenous Wnts or loss of postsynaptic Frizzled-7 (Fz7) receptors impaired LTP-mediated synaptic strength, spine growth, and AMPAR localization at synapses. Live imaging of SEP-GluA1 and single-particle tracking revealed that Wnt7a rapidly promoted synaptic AMPAR recruitment and trapping. Wnt7a, through Fz7, induced CaMKII-dependent loss of SynGAP from spines and increased extrasynaptic AMPARs by PKA phosphorylation. We identify a critical role for Wnt-Fz7 signaling in LTP-mediated synaptic accumulation of AMPARs and spine plasticity.
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spelling pubmed-59464582018-05-14 Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors McLeod, Faye Bossio, Alessandro Marzo, Aude Ciani, Lorenza Sibilla, Sara Hannan, Saad Wilson, Gemma A. Palomer, Ernest Smart, Trevor G. Gibb, Alasdair Salinas, Patricia C. Cell Rep Article The structural and functional plasticity of synapses is critical for learning and memory. Long-term potentiation (LTP) induction promotes spine growth and AMPAR accumulation at excitatory synapses, leading to increased synaptic strength. Glutamate initiates these processes, but the contribution from extracellular modulators is not fully established. Wnts are required for spine formation; however, their impact on activity-mediated spine plasticity and AMPAR localization is unknown. We found that LTP induction rapidly increased synaptic Wnt7a/b protein levels. Acute blockade of endogenous Wnts or loss of postsynaptic Frizzled-7 (Fz7) receptors impaired LTP-mediated synaptic strength, spine growth, and AMPAR localization at synapses. Live imaging of SEP-GluA1 and single-particle tracking revealed that Wnt7a rapidly promoted synaptic AMPAR recruitment and trapping. Wnt7a, through Fz7, induced CaMKII-dependent loss of SynGAP from spines and increased extrasynaptic AMPARs by PKA phosphorylation. We identify a critical role for Wnt-Fz7 signaling in LTP-mediated synaptic accumulation of AMPARs and spine plasticity. Cell Press 2018-04-25 /pmc/articles/PMC5946458/ /pubmed/29694885 http://dx.doi.org/10.1016/j.celrep.2018.03.119 Text en © 2018 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
McLeod, Faye
Bossio, Alessandro
Marzo, Aude
Ciani, Lorenza
Sibilla, Sara
Hannan, Saad
Wilson, Gemma A.
Palomer, Ernest
Smart, Trevor G.
Gibb, Alasdair
Salinas, Patricia C.
Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors
title Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors
title_full Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors
title_fullStr Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors
title_full_unstemmed Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors
title_short Wnt Signaling Mediates LTP-Dependent Spine Plasticity and AMPAR Localization through Frizzled-7 Receptors
title_sort wnt signaling mediates ltp-dependent spine plasticity and ampar localization through frizzled-7 receptors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5946458/
https://www.ncbi.nlm.nih.gov/pubmed/29694885
http://dx.doi.org/10.1016/j.celrep.2018.03.119
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