Mitochondria in Developmental and Adult Neurogenesis

Generation of new neurons is a tightly regulated process that involves several intrinsic and extrinsic factors. Among them, a metabolic switch from glycolysis to oxidative phosphorylation, together with mitochondrial remodeling, has emerged as crucial actors of neurogenesis. However, although accumu...

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Veröffentlicht in:Neurotoxicity research 2019-08, Vol.36 (2), p.257-267
Hauptverfasser: Arrázola, Macarena S., Andraini, Trinovita, Szelechowski, Marion, Mouledous, Lionel, Arnauné-Pelloquin, Laetitia, Davezac, Noélie, Belenguer, Pascale, Rampon, Claire, Miquel, Marie-Christine
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container_end_page 267
container_issue 2
container_start_page 257
container_title Neurotoxicity research
container_volume 36
creator Arrázola, Macarena S.
Andraini, Trinovita
Szelechowski, Marion
Mouledous, Lionel
Arnauné-Pelloquin, Laetitia
Davezac, Noélie
Belenguer, Pascale
Rampon, Claire
Miquel, Marie-Christine
description Generation of new neurons is a tightly regulated process that involves several intrinsic and extrinsic factors. Among them, a metabolic switch from glycolysis to oxidative phosphorylation, together with mitochondrial remodeling, has emerged as crucial actors of neurogenesis. However, although accumulating data raise the importance of mitochondrial morphology and function in neural stem cell proliferation and differentiation during development, information regarding the contribution of mitochondria to adult neurogenesis processes remains limited. In the present review, we discuss recent evidence covering the importance of mitochondrial morphology, function, and energy metabolism in the regulation of neuronal development and adult neurogenesis, and their impact on memory processes.
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subjects Adult
Animals
Biomedical and Life Sciences
Biomedicine
Cell Biology
Cell Differentiation - physiology
Humans
Life Sciences
Mitochondria - physiology
Neural Stem Cells - physiology
Neurobiology
Neurochemistry
Neurogenesis - physiology
Neurology
Neurons - physiology
Neurons and Cognition
Neurosciences
Original Article
Pharmacology/Toxicology
title Mitochondria in Developmental and Adult Neurogenesis
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