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SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation

Neurodegenerative disorders are an increasingly common and irreversible burden on society, often affecting the aging population, but their etiology and disease mechanisms are poorly understood. Studying monogenic neurodegenerative diseases with known genetic cause provides an opportunity to understa...

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Autores principales: Calvo-Garrido, Javier, Maffezzini, Camilla, Schober, Florian A., Clemente, Paula, Uhlin, Elias, Kele, Malin, Stranneheim, Henrik, Lesko, Nicole, Bruhn, Helene, Svenningsson, Per, Falk, Anna, Wedell, Anna, Freyer, Christoph, Wredenberg, Anna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6449840/
https://www.ncbi.nlm.nih.gov/pubmed/30827875
http://dx.doi.org/10.1016/j.stemcr.2019.01.023
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author Calvo-Garrido, Javier
Maffezzini, Camilla
Schober, Florian A.
Clemente, Paula
Uhlin, Elias
Kele, Malin
Stranneheim, Henrik
Lesko, Nicole
Bruhn, Helene
Svenningsson, Per
Falk, Anna
Wedell, Anna
Freyer, Christoph
Wredenberg, Anna
author_facet Calvo-Garrido, Javier
Maffezzini, Camilla
Schober, Florian A.
Clemente, Paula
Uhlin, Elias
Kele, Malin
Stranneheim, Henrik
Lesko, Nicole
Bruhn, Helene
Svenningsson, Per
Falk, Anna
Wedell, Anna
Freyer, Christoph
Wredenberg, Anna
author_sort Calvo-Garrido, Javier
collection PubMed
description Neurodegenerative disorders are an increasingly common and irreversible burden on society, often affecting the aging population, but their etiology and disease mechanisms are poorly understood. Studying monogenic neurodegenerative diseases with known genetic cause provides an opportunity to understand cellular mechanisms also affected in more complex disorders. We recently reported that loss-of-function mutations in the autophagy adaptor protein SQSTM1/p62 lead to a slowly progressive neurodegenerative disease presenting in childhood. To further elucidate the neuronal involvement, we studied the cellular consequences of loss of p62 in a neuroepithelial stem cell (NESC) model and differentiated neurons derived from reprogrammed p62 patient cells or by CRISPR/Cas9-directed gene editing in NESCs. Transcriptomic and proteomic analyses suggest that p62 is essential for neuronal differentiation by controlling the metabolic shift from aerobic glycolysis to oxidative phosphorylation required for neuronal maturation. This shift is blocked by the failure to sufficiently downregulate lactate dehydrogenase expression due to the loss of p62, possibly through impaired Hif-1α downregulation and increased sensitivity to oxidative stress. The findings imply an important role for p62 in neuronal energy metabolism and particularly in the regulation of the shift between glycolysis and oxidative phosphorylation required for normal neurodifferentiation.
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spelling pubmed-64498402019-04-16 SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation Calvo-Garrido, Javier Maffezzini, Camilla Schober, Florian A. Clemente, Paula Uhlin, Elias Kele, Malin Stranneheim, Henrik Lesko, Nicole Bruhn, Helene Svenningsson, Per Falk, Anna Wedell, Anna Freyer, Christoph Wredenberg, Anna Stem Cell Reports Article Neurodegenerative disorders are an increasingly common and irreversible burden on society, often affecting the aging population, but their etiology and disease mechanisms are poorly understood. Studying monogenic neurodegenerative diseases with known genetic cause provides an opportunity to understand cellular mechanisms also affected in more complex disorders. We recently reported that loss-of-function mutations in the autophagy adaptor protein SQSTM1/p62 lead to a slowly progressive neurodegenerative disease presenting in childhood. To further elucidate the neuronal involvement, we studied the cellular consequences of loss of p62 in a neuroepithelial stem cell (NESC) model and differentiated neurons derived from reprogrammed p62 patient cells or by CRISPR/Cas9-directed gene editing in NESCs. Transcriptomic and proteomic analyses suggest that p62 is essential for neuronal differentiation by controlling the metabolic shift from aerobic glycolysis to oxidative phosphorylation required for neuronal maturation. This shift is blocked by the failure to sufficiently downregulate lactate dehydrogenase expression due to the loss of p62, possibly through impaired Hif-1α downregulation and increased sensitivity to oxidative stress. The findings imply an important role for p62 in neuronal energy metabolism and particularly in the regulation of the shift between glycolysis and oxidative phosphorylation required for normal neurodifferentiation. Elsevier 2019-02-28 /pmc/articles/PMC6449840/ /pubmed/30827875 http://dx.doi.org/10.1016/j.stemcr.2019.01.023 Text en © 2019 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Calvo-Garrido, Javier
Maffezzini, Camilla
Schober, Florian A.
Clemente, Paula
Uhlin, Elias
Kele, Malin
Stranneheim, Henrik
Lesko, Nicole
Bruhn, Helene
Svenningsson, Per
Falk, Anna
Wedell, Anna
Freyer, Christoph
Wredenberg, Anna
SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation
title SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation
title_full SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation
title_fullStr SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation
title_full_unstemmed SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation
title_short SQSTM1/p62-Directed Metabolic Reprogramming Is Essential for Normal Neurodifferentiation
title_sort sqstm1/p62-directed metabolic reprogramming is essential for normal neurodifferentiation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6449840/
https://www.ncbi.nlm.nih.gov/pubmed/30827875
http://dx.doi.org/10.1016/j.stemcr.2019.01.023
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