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GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model

OBJECTIVE: Mutations in the spastic paraplegia gene 11 (SPG11), encoding spatacsin, cause the most frequent form of autosomal‐recessive complex hereditary spastic paraplegia (HSP) and juvenile‐onset amyotrophic lateral sclerosis (ALS5). When SPG11 is mutated, patients frequently present with spastic...

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Autores principales: Mishra, Himanshu K., Prots, Iryna, Havlicek, Steven, Kohl, Zacharias, Perez‐Branguli, Francesc, Boerstler, Tom, Anneser, Lukas, Minakaki, Georgia, Wend, Holger, Hampl, Martin, Leone, Marina, Brückner, Martina, Klucken, Jochen, Reis, Andre, Boyer, Leah, Schuierer, Gerhard, Behrens, Jürgen, Lampert, Angelika, Engel, Felix B., Gage, Fred H., Winkler, Jürgen, Winner, Beate
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5084783/
https://www.ncbi.nlm.nih.gov/pubmed/26971897
http://dx.doi.org/10.1002/ana.24633
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author Mishra, Himanshu K.
Prots, Iryna
Havlicek, Steven
Kohl, Zacharias
Perez‐Branguli, Francesc
Boerstler, Tom
Anneser, Lukas
Minakaki, Georgia
Wend, Holger
Hampl, Martin
Leone, Marina
Brückner, Martina
Klucken, Jochen
Reis, Andre
Boyer, Leah
Schuierer, Gerhard
Behrens, Jürgen
Lampert, Angelika
Engel, Felix B.
Gage, Fred H.
Winkler, Jürgen
Winner, Beate
author_facet Mishra, Himanshu K.
Prots, Iryna
Havlicek, Steven
Kohl, Zacharias
Perez‐Branguli, Francesc
Boerstler, Tom
Anneser, Lukas
Minakaki, Georgia
Wend, Holger
Hampl, Martin
Leone, Marina
Brückner, Martina
Klucken, Jochen
Reis, Andre
Boyer, Leah
Schuierer, Gerhard
Behrens, Jürgen
Lampert, Angelika
Engel, Felix B.
Gage, Fred H.
Winkler, Jürgen
Winner, Beate
author_sort Mishra, Himanshu K.
collection PubMed
description OBJECTIVE: Mutations in the spastic paraplegia gene 11 (SPG11), encoding spatacsin, cause the most frequent form of autosomal‐recessive complex hereditary spastic paraplegia (HSP) and juvenile‐onset amyotrophic lateral sclerosis (ALS5). When SPG11 is mutated, patients frequently present with spastic paraparesis, a thin corpus callosum, and cognitive impairment. We previously delineated a neurodegenerative phenotype in neurons of these patients. In the current study, we recapitulated early developmental phenotypes of SPG11 and outlined their cellular and molecular mechanisms in patient‐specific induced pluripotent stem cell (iPSC)‐derived cortical neural progenitor cells (NPCs). METHODS: We generated and characterized iPSC‐derived NPCs and neurons from 3 SPG11 patients and 2 age‐matched controls. RESULTS: Gene expression profiling of SPG11‐NPCs revealed widespread transcriptional alterations in neurodevelopmental pathways. These include changes in cell‐cycle, neurogenesis, cortical development pathways, in addition to autophagic deficits. More important, the GSK3ß‐signaling pathway was found to be dysregulated in SPG11‐NPCs. Impaired proliferation of SPG11‐NPCs resulted in a significant diminution in the number of neural cells. The decrease in mitotically active SPG11‐NPCs was rescued by GSK3 modulation. INTERPRETATION: This iPSC‐derived NPC model provides the first evidence for an early neurodevelopmental phenotype in SPG11, with GSK3ß as a potential novel target to reverse the disease phenotype. Ann Neurol 2016;79:826–840
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spelling pubmed-50847832016-11-09 GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model Mishra, Himanshu K. Prots, Iryna Havlicek, Steven Kohl, Zacharias Perez‐Branguli, Francesc Boerstler, Tom Anneser, Lukas Minakaki, Georgia Wend, Holger Hampl, Martin Leone, Marina Brückner, Martina Klucken, Jochen Reis, Andre Boyer, Leah Schuierer, Gerhard Behrens, Jürgen Lampert, Angelika Engel, Felix B. Gage, Fred H. Winkler, Jürgen Winner, Beate Ann Neurol Research Articles OBJECTIVE: Mutations in the spastic paraplegia gene 11 (SPG11), encoding spatacsin, cause the most frequent form of autosomal‐recessive complex hereditary spastic paraplegia (HSP) and juvenile‐onset amyotrophic lateral sclerosis (ALS5). When SPG11 is mutated, patients frequently present with spastic paraparesis, a thin corpus callosum, and cognitive impairment. We previously delineated a neurodegenerative phenotype in neurons of these patients. In the current study, we recapitulated early developmental phenotypes of SPG11 and outlined their cellular and molecular mechanisms in patient‐specific induced pluripotent stem cell (iPSC)‐derived cortical neural progenitor cells (NPCs). METHODS: We generated and characterized iPSC‐derived NPCs and neurons from 3 SPG11 patients and 2 age‐matched controls. RESULTS: Gene expression profiling of SPG11‐NPCs revealed widespread transcriptional alterations in neurodevelopmental pathways. These include changes in cell‐cycle, neurogenesis, cortical development pathways, in addition to autophagic deficits. More important, the GSK3ß‐signaling pathway was found to be dysregulated in SPG11‐NPCs. Impaired proliferation of SPG11‐NPCs resulted in a significant diminution in the number of neural cells. The decrease in mitotically active SPG11‐NPCs was rescued by GSK3 modulation. INTERPRETATION: This iPSC‐derived NPC model provides the first evidence for an early neurodevelopmental phenotype in SPG11, with GSK3ß as a potential novel target to reverse the disease phenotype. Ann Neurol 2016;79:826–840 John Wiley and Sons Inc. 2016-05-06 2016-05 /pmc/articles/PMC5084783/ /pubmed/26971897 http://dx.doi.org/10.1002/ana.24633 Text en © 2016 The Authors. Annals of Neurology published by Wiley Periodicals, Inc. on behalf of American Neurological Association. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial‐NoDerivs (http://creativecommons.org/licenses/by-nc-nd/3.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Mishra, Himanshu K.
Prots, Iryna
Havlicek, Steven
Kohl, Zacharias
Perez‐Branguli, Francesc
Boerstler, Tom
Anneser, Lukas
Minakaki, Georgia
Wend, Holger
Hampl, Martin
Leone, Marina
Brückner, Martina
Klucken, Jochen
Reis, Andre
Boyer, Leah
Schuierer, Gerhard
Behrens, Jürgen
Lampert, Angelika
Engel, Felix B.
Gage, Fred H.
Winkler, Jürgen
Winner, Beate
GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model
title GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model
title_full GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model
title_fullStr GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model
title_full_unstemmed GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model
title_short GSK3ß‐dependent dysregulation of neurodevelopment in SPG11‐patient induced pluripotent stem cell model
title_sort gsk3ß‐dependent dysregulation of neurodevelopment in spg11‐patient induced pluripotent stem cell model
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5084783/
https://www.ncbi.nlm.nih.gov/pubmed/26971897
http://dx.doi.org/10.1002/ana.24633
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