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Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1

Spinocerebellar ataxias are neurodegenerative diseases, the hallmark symptom of which is the development of ataxia due to cerebellar dysfunction. Purkinje cells, the principal neurons of the cerebellar cortex, are the main cells affected in these disorders, but the sequence of pathological events le...

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Autores principales: Osório, Catarina, White, Joshua J, Lu, Heiling, Beekhof, Gerrit C, Fiocchi, Francesca Romana, Andriessen, Charlotte A, Dijkhuizen, Stephanie, Post, Laura, Schonewille, Martijn
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10232256/
https://www.ncbi.nlm.nih.gov/pubmed/36352508
http://dx.doi.org/10.1093/brain/awac422
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author Osório, Catarina
White, Joshua J
Lu, Heiling
Beekhof, Gerrit C
Fiocchi, Francesca Romana
Andriessen, Charlotte A
Dijkhuizen, Stephanie
Post, Laura
Schonewille, Martijn
author_facet Osório, Catarina
White, Joshua J
Lu, Heiling
Beekhof, Gerrit C
Fiocchi, Francesca Romana
Andriessen, Charlotte A
Dijkhuizen, Stephanie
Post, Laura
Schonewille, Martijn
author_sort Osório, Catarina
collection PubMed
description Spinocerebellar ataxias are neurodegenerative diseases, the hallmark symptom of which is the development of ataxia due to cerebellar dysfunction. Purkinje cells, the principal neurons of the cerebellar cortex, are the main cells affected in these disorders, but the sequence of pathological events leading to their dysfunction is poorly understood. Understanding the origins of Purkinje cells dysfunction before it manifests is imperative to interpret the functional and behavioural consequences of cerebellar-related disorders, providing an optimal timeline for therapeutic interventions. Here, we report the cascade of events leading to Purkinje cells dysfunction before the onset of ataxia in a mouse model of spinocerebellar ataxia 1 (SCA1). Spatiotemporal characterization of the ATXN1[82Q] SCA1 mouse model revealed high levels of the mutant ATXN1[82Q] weeks before the onset of ataxia. The expression of the toxic protein first caused a reduction of Purkinje cells intrinsic excitability, which was followed by atrophy of Purkinje cells dendrite arborization and aberrant glutamatergic signalling, finally leading to disruption of Purkinje cells innervation of climbing fibres and loss of intrinsic plasticity of Purkinje cells. Functionally, we found that deficits in eyeblink conditioning, a form of cerebellum-dependent motor learning, precede the onset of ataxia, matching the timeline of climbing fibre degeneration and reduced intrinsic plasticity. Together, our results suggest that abnormal synaptic signalling and intrinsic plasticity during the pre-ataxia stage of spinocerebellar ataxias underlie an aberrant cerebellar circuitry that anticipates the full extent of the disease severity. Furthermore, our work indicates the potential for eyeblink conditioning to be used as a sensitive tool to detect early cerebellar dysfunction as a sign of future disease.
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spelling pubmed-102322562023-06-01 Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1 Osório, Catarina White, Joshua J Lu, Heiling Beekhof, Gerrit C Fiocchi, Francesca Romana Andriessen, Charlotte A Dijkhuizen, Stephanie Post, Laura Schonewille, Martijn Brain Original Article Spinocerebellar ataxias are neurodegenerative diseases, the hallmark symptom of which is the development of ataxia due to cerebellar dysfunction. Purkinje cells, the principal neurons of the cerebellar cortex, are the main cells affected in these disorders, but the sequence of pathological events leading to their dysfunction is poorly understood. Understanding the origins of Purkinje cells dysfunction before it manifests is imperative to interpret the functional and behavioural consequences of cerebellar-related disorders, providing an optimal timeline for therapeutic interventions. Here, we report the cascade of events leading to Purkinje cells dysfunction before the onset of ataxia in a mouse model of spinocerebellar ataxia 1 (SCA1). Spatiotemporal characterization of the ATXN1[82Q] SCA1 mouse model revealed high levels of the mutant ATXN1[82Q] weeks before the onset of ataxia. The expression of the toxic protein first caused a reduction of Purkinje cells intrinsic excitability, which was followed by atrophy of Purkinje cells dendrite arborization and aberrant glutamatergic signalling, finally leading to disruption of Purkinje cells innervation of climbing fibres and loss of intrinsic plasticity of Purkinje cells. Functionally, we found that deficits in eyeblink conditioning, a form of cerebellum-dependent motor learning, precede the onset of ataxia, matching the timeline of climbing fibre degeneration and reduced intrinsic plasticity. Together, our results suggest that abnormal synaptic signalling and intrinsic plasticity during the pre-ataxia stage of spinocerebellar ataxias underlie an aberrant cerebellar circuitry that anticipates the full extent of the disease severity. Furthermore, our work indicates the potential for eyeblink conditioning to be used as a sensitive tool to detect early cerebellar dysfunction as a sign of future disease. Oxford University Press 2022-11-10 /pmc/articles/PMC10232256/ /pubmed/36352508 http://dx.doi.org/10.1093/brain/awac422 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of the Guarantors of Brain. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original Article
Osório, Catarina
White, Joshua J
Lu, Heiling
Beekhof, Gerrit C
Fiocchi, Francesca Romana
Andriessen, Charlotte A
Dijkhuizen, Stephanie
Post, Laura
Schonewille, Martijn
Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1
title Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1
title_full Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1
title_fullStr Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1
title_full_unstemmed Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1
title_short Pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of SCA1
title_sort pre-ataxic loss of intrinsic plasticity and motor learning in a mouse model of sca1
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10232256/
https://www.ncbi.nlm.nih.gov/pubmed/36352508
http://dx.doi.org/10.1093/brain/awac422
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