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HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition

Neural computations rely on ion channels that modify neuronal responses to synaptic inputs. While single cell recordings suggest diverse and neurone type-specific computational functions for HCN1 channels, their behavioural roles in any single neurone type are not clear. Using a battery of behaviour...

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Autores principales: Rinaldi, Arianna, Defterali, Cagla, Mialot, Antoine, Garden, Derek L F, Beraneck, Mathieu, Nolan, Matthew F
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Science Inc 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3853504/
https://www.ncbi.nlm.nih.gov/pubmed/24000178
http://dx.doi.org/10.1113/jphysiol.2013.259499
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author Rinaldi, Arianna
Defterali, Cagla
Mialot, Antoine
Garden, Derek L F
Beraneck, Mathieu
Nolan, Matthew F
author_facet Rinaldi, Arianna
Defterali, Cagla
Mialot, Antoine
Garden, Derek L F
Beraneck, Mathieu
Nolan, Matthew F
author_sort Rinaldi, Arianna
collection PubMed
description Neural computations rely on ion channels that modify neuronal responses to synaptic inputs. While single cell recordings suggest diverse and neurone type-specific computational functions for HCN1 channels, their behavioural roles in any single neurone type are not clear. Using a battery of behavioural assays, including analysis of motor learning in vestibulo-ocular reflex and rotarod tests, we find that deletion of HCN1 channels from cerebellar Purkinje cells selectively impairs late stages of motor learning. Because deletion of HCN1 modifies only a subset of behaviours involving Purkinje cells, we asked whether the channel also has functional specificity at a cellular level. We find that HCN1 channels in cerebellar Purkinje cells reduce the duration of inhibitory synaptic responses but, in the absence of membrane hyperpolarization, do not affect responses to excitatory inputs. Our results indicate that manipulation of subthreshold computation in a single neurone type causes specific modifications to behaviour.
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spelling pubmed-38535042014-11-15 HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition Rinaldi, Arianna Defterali, Cagla Mialot, Antoine Garden, Derek L F Beraneck, Mathieu Nolan, Matthew F J Physiol Neuroscience: Behavioural/Systems/Cognitive Neural computations rely on ion channels that modify neuronal responses to synaptic inputs. While single cell recordings suggest diverse and neurone type-specific computational functions for HCN1 channels, their behavioural roles in any single neurone type are not clear. Using a battery of behavioural assays, including analysis of motor learning in vestibulo-ocular reflex and rotarod tests, we find that deletion of HCN1 channels from cerebellar Purkinje cells selectively impairs late stages of motor learning. Because deletion of HCN1 modifies only a subset of behaviours involving Purkinje cells, we asked whether the channel also has functional specificity at a cellular level. We find that HCN1 channels in cerebellar Purkinje cells reduce the duration of inhibitory synaptic responses but, in the absence of membrane hyperpolarization, do not affect responses to excitatory inputs. Our results indicate that manipulation of subthreshold computation in a single neurone type causes specific modifications to behaviour. Blackwell Science Inc 2013-11-15 2013-09-02 /pmc/articles/PMC3853504/ /pubmed/24000178 http://dx.doi.org/10.1113/jphysiol.2013.259499 Text en © 2013 The Authors. The Journal of Physiology © 2013 The Physiological Society
spellingShingle Neuroscience: Behavioural/Systems/Cognitive
Rinaldi, Arianna
Defterali, Cagla
Mialot, Antoine
Garden, Derek L F
Beraneck, Mathieu
Nolan, Matthew F
HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition
title HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition
title_full HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition
title_fullStr HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition
title_full_unstemmed HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition
title_short HCN1 channels in cerebellar Purkinje cells promote late stages of learning and constrain synaptic inhibition
title_sort hcn1 channels in cerebellar purkinje cells promote late stages of learning and constrain synaptic inhibition
topic Neuroscience: Behavioural/Systems/Cognitive
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3853504/
https://www.ncbi.nlm.nih.gov/pubmed/24000178
http://dx.doi.org/10.1113/jphysiol.2013.259499
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