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Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice

Mitochondria are integrative hubs central to cellular adaptive pathways. Such pathways are critical in highly differentiated postmitotic neurons, the plasticity of which sustains brain function. Consequently, defects in mitochondria and in their dynamics appear instrumental in neurodegenerative dise...

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Autores principales: Andraini, Trinovita, Moulédous, Lionel, Petsophonsakul, Petnoi, Florian, Cédrick, Gauzin, Sébastien, Botella-Daloyau, Marlène, Arrázola, Macarena, Nikolla, Kamela, Philip, Adam, Leydier, Alice, Marque, Manon, Arnauné-Pelloquin, Laetitia, Belenguer, Pascale, Rampon, Claire, Miquel, Marie-Christine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10668243/
https://www.ncbi.nlm.nih.gov/pubmed/37863658
http://dx.doi.org/10.1523/ENEURO.0073-23.2023
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author Andraini, Trinovita
Moulédous, Lionel
Petsophonsakul, Petnoi
Florian, Cédrick
Gauzin, Sébastien
Botella-Daloyau, Marlène
Arrázola, Macarena
Nikolla, Kamela
Philip, Adam
Leydier, Alice
Marque, Manon
Arnauné-Pelloquin, Laetitia
Belenguer, Pascale
Rampon, Claire
Miquel, Marie-Christine
author_facet Andraini, Trinovita
Moulédous, Lionel
Petsophonsakul, Petnoi
Florian, Cédrick
Gauzin, Sébastien
Botella-Daloyau, Marlène
Arrázola, Macarena
Nikolla, Kamela
Philip, Adam
Leydier, Alice
Marque, Manon
Arnauné-Pelloquin, Laetitia
Belenguer, Pascale
Rampon, Claire
Miquel, Marie-Christine
author_sort Andraini, Trinovita
collection PubMed
description Mitochondria are integrative hubs central to cellular adaptive pathways. Such pathways are critical in highly differentiated postmitotic neurons, the plasticity of which sustains brain function. Consequently, defects in mitochondria and in their dynamics appear instrumental in neurodegenerative diseases and may also participate in cognitive impairments. To directly test this hypothesis, we analyzed cognitive performances in a mouse mitochondria-based disease model, because of haploinsufficiency in the mitochondrial optic atrophy type 1 (OPA1) protein involved in mitochondrial dynamics. In males, we evaluated adult hippocampal neurogenesis parameters using immunohistochemistry. We performed a battery of tests to assess basal behavioral characteristics and cognitive performances, and tested putative treatments. While in dominant optic atrophy (DOA) mouse models, the known main symptoms are late onset visual deficits, we discovered early impairments in hippocampus-dependent spatial memory attributable to defects in adult neurogenesis. Moreover, less connected adult-born hippocampal neurons showed a decrease in mitochondrial content. Remarkably, voluntary exercise or pharmacological treatment targeting mitochondrial dynamics restored spatial memory in DOA mice. Altogether, our study identifies a crucial role for OPA1-dependent mitochondrial functions in adult neurogenesis, and thus in hippocampal-dependent cognitive functions. More generally, our findings show that adult neurogenesis is highly sensitive to mild mitochondrial defects, generating impairments in spatial memory that can be detected at an early stage and counterbalanced by physical exercise and pharmacological targeting of mitochondrial dynamics. Thus, amplification of mitochondrial function at an early stage appears beneficial for late-onset neurodegenerative diseases.
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spelling pubmed-106682432023-11-08 Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice Andraini, Trinovita Moulédous, Lionel Petsophonsakul, Petnoi Florian, Cédrick Gauzin, Sébastien Botella-Daloyau, Marlène Arrázola, Macarena Nikolla, Kamela Philip, Adam Leydier, Alice Marque, Manon Arnauné-Pelloquin, Laetitia Belenguer, Pascale Rampon, Claire Miquel, Marie-Christine eNeuro Research Article: New Research Mitochondria are integrative hubs central to cellular adaptive pathways. Such pathways are critical in highly differentiated postmitotic neurons, the plasticity of which sustains brain function. Consequently, defects in mitochondria and in their dynamics appear instrumental in neurodegenerative diseases and may also participate in cognitive impairments. To directly test this hypothesis, we analyzed cognitive performances in a mouse mitochondria-based disease model, because of haploinsufficiency in the mitochondrial optic atrophy type 1 (OPA1) protein involved in mitochondrial dynamics. In males, we evaluated adult hippocampal neurogenesis parameters using immunohistochemistry. We performed a battery of tests to assess basal behavioral characteristics and cognitive performances, and tested putative treatments. While in dominant optic atrophy (DOA) mouse models, the known main symptoms are late onset visual deficits, we discovered early impairments in hippocampus-dependent spatial memory attributable to defects in adult neurogenesis. Moreover, less connected adult-born hippocampal neurons showed a decrease in mitochondrial content. Remarkably, voluntary exercise or pharmacological treatment targeting mitochondrial dynamics restored spatial memory in DOA mice. Altogether, our study identifies a crucial role for OPA1-dependent mitochondrial functions in adult neurogenesis, and thus in hippocampal-dependent cognitive functions. More generally, our findings show that adult neurogenesis is highly sensitive to mild mitochondrial defects, generating impairments in spatial memory that can be detected at an early stage and counterbalanced by physical exercise and pharmacological targeting of mitochondrial dynamics. Thus, amplification of mitochondrial function at an early stage appears beneficial for late-onset neurodegenerative diseases. Society for Neuroscience 2023-11-08 /pmc/articles/PMC10668243/ /pubmed/37863658 http://dx.doi.org/10.1523/ENEURO.0073-23.2023 Text en Copyright © 2023 Andraini et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article: New Research
Andraini, Trinovita
Moulédous, Lionel
Petsophonsakul, Petnoi
Florian, Cédrick
Gauzin, Sébastien
Botella-Daloyau, Marlène
Arrázola, Macarena
Nikolla, Kamela
Philip, Adam
Leydier, Alice
Marque, Manon
Arnauné-Pelloquin, Laetitia
Belenguer, Pascale
Rampon, Claire
Miquel, Marie-Christine
Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice
title Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice
title_full Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice
title_fullStr Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice
title_full_unstemmed Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice
title_short Mitochondrial OPA1 Deficiency Is Associated to Reversible Defects in Spatial Memory Related to Adult Neurogenesis in Mice
title_sort mitochondrial opa1 deficiency is associated to reversible defects in spatial memory related to adult neurogenesis in mice
topic Research Article: New Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10668243/
https://www.ncbi.nlm.nih.gov/pubmed/37863658
http://dx.doi.org/10.1523/ENEURO.0073-23.2023
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