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Protein kinase N1 critically regulates cerebellar development and long-term function

Increasing evidence suggests that synapse dysfunctions are a major determinant of several neurodevelopmental and neurodegenerative diseases. Here we identify protein kinase N1 (PKN1) as a novel key player in fine-tuning the balance between axonal outgrowth and presynaptic differentiation in the para...

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Autores principales: zur Nedden, Stephanie, Eith, Rafaela, Schwarzer, Christoph, Zanetti, Lucia, Seitter, Hartwig, Fresser, Friedrich, Koschak, Alexandra, Cameron, Angus J.M., Parker, Peter J., Baier, Gottfried, Baier-Bitterlich, Gabriele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5919825/
https://www.ncbi.nlm.nih.gov/pubmed/29494346
http://dx.doi.org/10.1172/JCI96165
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author zur Nedden, Stephanie
Eith, Rafaela
Schwarzer, Christoph
Zanetti, Lucia
Seitter, Hartwig
Fresser, Friedrich
Koschak, Alexandra
Cameron, Angus J.M.
Parker, Peter J.
Baier, Gottfried
Baier-Bitterlich, Gabriele
author_facet zur Nedden, Stephanie
Eith, Rafaela
Schwarzer, Christoph
Zanetti, Lucia
Seitter, Hartwig
Fresser, Friedrich
Koschak, Alexandra
Cameron, Angus J.M.
Parker, Peter J.
Baier, Gottfried
Baier-Bitterlich, Gabriele
author_sort zur Nedden, Stephanie
collection PubMed
description Increasing evidence suggests that synapse dysfunctions are a major determinant of several neurodevelopmental and neurodegenerative diseases. Here we identify protein kinase N1 (PKN1) as a novel key player in fine-tuning the balance between axonal outgrowth and presynaptic differentiation in the parallel fiber–forming (PF-forming) cerebellar granule cells (Cgcs). Postnatal Pkn1(–/–) animals showed a defective PF–Purkinje cell (PF-PC) synapse formation. In vitro, Pkn1(–/–) Cgcs exhibited deregulated axonal outgrowth, elevated AKT phosphorylation, and higher levels of neuronal differentiation-2 (NeuroD2), a transcription factor preventing presynaptic maturation. Concomitantly, Pkn1(–/–) Cgcs had a reduced density of presynaptic sites. By inhibiting AKT with MK-2206 and siRNA-mediated knockdown, we found that AKT hyperactivation is responsible for the elongated axons, higher NeuroD2 levels, and reduced density of presynaptic specifications in Pkn1(–/–) Cgcs. In line with our in vitro data, Pkn1(–/–) mice showed AKT hyperactivation, elevated NeuroD2 levels, and reduced expression of PF-PC synaptic markers during stages of PF maturation in vivo. The long-term effect of Pkn1 knockout was further seen in cerebellar atrophy and mild ataxia. In summary, our results demonstrate that PKN1 functions as a developmentally active gatekeeper of AKT activity, thereby fine-tuning axonal outgrowth and presynaptic differentiation of Cgcs and subsequently the correct PF-PC synapse formation.
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spelling pubmed-59198252018-05-18 Protein kinase N1 critically regulates cerebellar development and long-term function zur Nedden, Stephanie Eith, Rafaela Schwarzer, Christoph Zanetti, Lucia Seitter, Hartwig Fresser, Friedrich Koschak, Alexandra Cameron, Angus J.M. Parker, Peter J. Baier, Gottfried Baier-Bitterlich, Gabriele J Clin Invest Research Article Increasing evidence suggests that synapse dysfunctions are a major determinant of several neurodevelopmental and neurodegenerative diseases. Here we identify protein kinase N1 (PKN1) as a novel key player in fine-tuning the balance between axonal outgrowth and presynaptic differentiation in the parallel fiber–forming (PF-forming) cerebellar granule cells (Cgcs). Postnatal Pkn1(–/–) animals showed a defective PF–Purkinje cell (PF-PC) synapse formation. In vitro, Pkn1(–/–) Cgcs exhibited deregulated axonal outgrowth, elevated AKT phosphorylation, and higher levels of neuronal differentiation-2 (NeuroD2), a transcription factor preventing presynaptic maturation. Concomitantly, Pkn1(–/–) Cgcs had a reduced density of presynaptic sites. By inhibiting AKT with MK-2206 and siRNA-mediated knockdown, we found that AKT hyperactivation is responsible for the elongated axons, higher NeuroD2 levels, and reduced density of presynaptic specifications in Pkn1(–/–) Cgcs. In line with our in vitro data, Pkn1(–/–) mice showed AKT hyperactivation, elevated NeuroD2 levels, and reduced expression of PF-PC synaptic markers during stages of PF maturation in vivo. The long-term effect of Pkn1 knockout was further seen in cerebellar atrophy and mild ataxia. In summary, our results demonstrate that PKN1 functions as a developmentally active gatekeeper of AKT activity, thereby fine-tuning axonal outgrowth and presynaptic differentiation of Cgcs and subsequently the correct PF-PC synapse formation. American Society for Clinical Investigation 2018-04-16 2018-05-01 /pmc/articles/PMC5919825/ /pubmed/29494346 http://dx.doi.org/10.1172/JCI96165 Text en Copyright © 2018 Nedden et al. http://creativecommons.org/licenses/by/4.0/ This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Research Article
zur Nedden, Stephanie
Eith, Rafaela
Schwarzer, Christoph
Zanetti, Lucia
Seitter, Hartwig
Fresser, Friedrich
Koschak, Alexandra
Cameron, Angus J.M.
Parker, Peter J.
Baier, Gottfried
Baier-Bitterlich, Gabriele
Protein kinase N1 critically regulates cerebellar development and long-term function
title Protein kinase N1 critically regulates cerebellar development and long-term function
title_full Protein kinase N1 critically regulates cerebellar development and long-term function
title_fullStr Protein kinase N1 critically regulates cerebellar development and long-term function
title_full_unstemmed Protein kinase N1 critically regulates cerebellar development and long-term function
title_short Protein kinase N1 critically regulates cerebellar development and long-term function
title_sort protein kinase n1 critically regulates cerebellar development and long-term function
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5919825/
https://www.ncbi.nlm.nih.gov/pubmed/29494346
http://dx.doi.org/10.1172/JCI96165
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