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Metabolic reprogramming during neuronal differentiation

Newly generated neurons pass through a series of well-defined developmental stages, which allow them to integrate into existing neuronal circuits. After exit from the cell cycle, postmitotic neurons undergo neuronal migration, axonal elongation, axon pruning, dendrite morphogenesis and synaptic matu...

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Autores principales: Agostini, M, Romeo, F, Inoue, S, Niklison-Chirou, M V, Elia, A J, Dinsdale, D, Morone, N, Knight, R A, Mak, T W, Melino, G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5072427/
https://www.ncbi.nlm.nih.gov/pubmed/27058317
http://dx.doi.org/10.1038/cdd.2016.36
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author Agostini, M
Romeo, F
Inoue, S
Niklison-Chirou, M V
Elia, A J
Dinsdale, D
Morone, N
Knight, R A
Mak, T W
Melino, G
author_facet Agostini, M
Romeo, F
Inoue, S
Niklison-Chirou, M V
Elia, A J
Dinsdale, D
Morone, N
Knight, R A
Mak, T W
Melino, G
author_sort Agostini, M
collection PubMed
description Newly generated neurons pass through a series of well-defined developmental stages, which allow them to integrate into existing neuronal circuits. After exit from the cell cycle, postmitotic neurons undergo neuronal migration, axonal elongation, axon pruning, dendrite morphogenesis and synaptic maturation and plasticity. Lack of a global metabolic analysis during early cortical neuronal development led us to explore the role of cellular metabolism and mitochondrial biology during ex vivo differentiation of primary cortical neurons. Unexpectedly, we observed a huge increase in mitochondrial biogenesis. Changes in mitochondrial mass, morphology and function were correlated with the upregulation of the master regulators of mitochondrial biogenesis, TFAM and PGC-1α. Concomitant with mitochondrial biogenesis, we observed an increase in glucose metabolism during neuronal differentiation, which was linked to an increase in glucose uptake and enhanced GLUT3 mRNA expression and platelet isoform of phosphofructokinase 1 (PFKp) protein expression. In addition, glutamate–glutamine metabolism was also increased during the differentiation of cortical neurons. We identified PI3K–Akt–mTOR signalling as a critical regulator role of energy metabolism in neurons. Selective pharmacological inhibition of these metabolic pathways indicate existence of metabolic checkpoint that need to be satisfied in order to allow neuronal differentiation.
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spelling pubmed-50724272016-10-31 Metabolic reprogramming during neuronal differentiation Agostini, M Romeo, F Inoue, S Niklison-Chirou, M V Elia, A J Dinsdale, D Morone, N Knight, R A Mak, T W Melino, G Cell Death Differ Original Paper Newly generated neurons pass through a series of well-defined developmental stages, which allow them to integrate into existing neuronal circuits. After exit from the cell cycle, postmitotic neurons undergo neuronal migration, axonal elongation, axon pruning, dendrite morphogenesis and synaptic maturation and plasticity. Lack of a global metabolic analysis during early cortical neuronal development led us to explore the role of cellular metabolism and mitochondrial biology during ex vivo differentiation of primary cortical neurons. Unexpectedly, we observed a huge increase in mitochondrial biogenesis. Changes in mitochondrial mass, morphology and function were correlated with the upregulation of the master regulators of mitochondrial biogenesis, TFAM and PGC-1α. Concomitant with mitochondrial biogenesis, we observed an increase in glucose metabolism during neuronal differentiation, which was linked to an increase in glucose uptake and enhanced GLUT3 mRNA expression and platelet isoform of phosphofructokinase 1 (PFKp) protein expression. In addition, glutamate–glutamine metabolism was also increased during the differentiation of cortical neurons. We identified PI3K–Akt–mTOR signalling as a critical regulator role of energy metabolism in neurons. Selective pharmacological inhibition of these metabolic pathways indicate existence of metabolic checkpoint that need to be satisfied in order to allow neuronal differentiation. Nature Publishing Group 2016-09-01 2016-04-08 /pmc/articles/PMC5072427/ /pubmed/27058317 http://dx.doi.org/10.1038/cdd.2016.36 Text en Copyright © 2016 Macmillan Publishers Limited http://creativecommons.org/licenses/by-nc-nd/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/4.0/
spellingShingle Original Paper
Agostini, M
Romeo, F
Inoue, S
Niklison-Chirou, M V
Elia, A J
Dinsdale, D
Morone, N
Knight, R A
Mak, T W
Melino, G
Metabolic reprogramming during neuronal differentiation
title Metabolic reprogramming during neuronal differentiation
title_full Metabolic reprogramming during neuronal differentiation
title_fullStr Metabolic reprogramming during neuronal differentiation
title_full_unstemmed Metabolic reprogramming during neuronal differentiation
title_short Metabolic reprogramming during neuronal differentiation
title_sort metabolic reprogramming during neuronal differentiation
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5072427/
https://www.ncbi.nlm.nih.gov/pubmed/27058317
http://dx.doi.org/10.1038/cdd.2016.36
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