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SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons

Actin plays a fundamental role in the regulation of spine morphology (both shrinkage and enlargement) upon synaptic activation. In particular, actin depolymerization is crucial for the spine shrinkage in NMDAR-mediated synaptic depression. Here, we define the role of SPIN90 phosphorylation/dephospho...

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Autores principales: Cho, In Ha, Lee, Min Jung, Kim, Dae Hwan, Kim, Bora, Bae, Jeomil, Choi, Kyu Yeong, Kim, Seon-Myung, Huh, Yun Hyun, Lee, Kun Ho, Kim, Chong-Hyun, Song, Woo Keun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Basel 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3825632/
https://www.ncbi.nlm.nih.gov/pubmed/23765104
http://dx.doi.org/10.1007/s00018-013-1391-4
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author Cho, In Ha
Lee, Min Jung
Kim, Dae Hwan
Kim, Bora
Bae, Jeomil
Choi, Kyu Yeong
Kim, Seon-Myung
Huh, Yun Hyun
Lee, Kun Ho
Kim, Chong-Hyun
Song, Woo Keun
author_facet Cho, In Ha
Lee, Min Jung
Kim, Dae Hwan
Kim, Bora
Bae, Jeomil
Choi, Kyu Yeong
Kim, Seon-Myung
Huh, Yun Hyun
Lee, Kun Ho
Kim, Chong-Hyun
Song, Woo Keun
author_sort Cho, In Ha
collection PubMed
description Actin plays a fundamental role in the regulation of spine morphology (both shrinkage and enlargement) upon synaptic activation. In particular, actin depolymerization is crucial for the spine shrinkage in NMDAR-mediated synaptic depression. Here, we define the role of SPIN90 phosphorylation/dephosphorylation in regulating actin depolymerization via modulation of cofilin activity. When neurons were treated with NMDA, SPIN90 was dephosphorylated by STEP61 (striatal-enriched protein tyrosine phosphatase) and translocated from the spines to the dendritic shafts. In addition, phosphorylated SPIN90 bound cofilin and then inhibited cofilin activity, suggesting that SPIN90 dephosphorylation is a prerequisite step for releasing cofilin so that cofilin can adequately sever actin filaments into monomeric form. We found that SPIN90 YE, a phosphomimetic mutant, remained in the spines after NMDAR activation where it bound cofilin, thereby effectively preventing actin depolymerization. This led to inhibition of the activity-dependent redistribution of cortactin and drebrin A, as well as of the morphological changes in the spines that underlie synaptic plasticity. These findings indicate that NMDA-induced SPIN90 dephosphorylation and translocation initiates cofilin-mediated actin dynamics and spine shrinkage within dendritic spines, thereby modulating synaptic activity. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1007/s00018-013-1391-4) contains supplementary material, which is available to authorized users.
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spelling pubmed-38256322013-11-21 SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons Cho, In Ha Lee, Min Jung Kim, Dae Hwan Kim, Bora Bae, Jeomil Choi, Kyu Yeong Kim, Seon-Myung Huh, Yun Hyun Lee, Kun Ho Kim, Chong-Hyun Song, Woo Keun Cell Mol Life Sci Research Article Actin plays a fundamental role in the regulation of spine morphology (both shrinkage and enlargement) upon synaptic activation. In particular, actin depolymerization is crucial for the spine shrinkage in NMDAR-mediated synaptic depression. Here, we define the role of SPIN90 phosphorylation/dephosphorylation in regulating actin depolymerization via modulation of cofilin activity. When neurons were treated with NMDA, SPIN90 was dephosphorylated by STEP61 (striatal-enriched protein tyrosine phosphatase) and translocated from the spines to the dendritic shafts. In addition, phosphorylated SPIN90 bound cofilin and then inhibited cofilin activity, suggesting that SPIN90 dephosphorylation is a prerequisite step for releasing cofilin so that cofilin can adequately sever actin filaments into monomeric form. We found that SPIN90 YE, a phosphomimetic mutant, remained in the spines after NMDAR activation where it bound cofilin, thereby effectively preventing actin depolymerization. This led to inhibition of the activity-dependent redistribution of cortactin and drebrin A, as well as of the morphological changes in the spines that underlie synaptic plasticity. These findings indicate that NMDA-induced SPIN90 dephosphorylation and translocation initiates cofilin-mediated actin dynamics and spine shrinkage within dendritic spines, thereby modulating synaptic activity. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1007/s00018-013-1391-4) contains supplementary material, which is available to authorized users. Springer Basel 2013-06-14 2013 /pmc/articles/PMC3825632/ /pubmed/23765104 http://dx.doi.org/10.1007/s00018-013-1391-4 Text en © Springer Basel 2013
spellingShingle Research Article
Cho, In Ha
Lee, Min Jung
Kim, Dae Hwan
Kim, Bora
Bae, Jeomil
Choi, Kyu Yeong
Kim, Seon-Myung
Huh, Yun Hyun
Lee, Kun Ho
Kim, Chong-Hyun
Song, Woo Keun
SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons
title SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons
title_full SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons
title_fullStr SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons
title_full_unstemmed SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons
title_short SPIN90 dephosphorylation is required for cofilin-mediated actin depolymerization in NMDA-stimulated hippocampal neurons
title_sort spin90 dephosphorylation is required for cofilin-mediated actin depolymerization in nmda-stimulated hippocampal neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3825632/
https://www.ncbi.nlm.nih.gov/pubmed/23765104
http://dx.doi.org/10.1007/s00018-013-1391-4
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