Using c-kit to genetically target cerebellar molecular layer interneurons in adult mice

The cerebellar system helps modulate and fine-tune motor action. Purkinje cells (PCs) provide the sole output of the cerebellar cortex, therefore, any cerebellar involvement in motor activity must be driven by changes in PC firing rates. Several different cell types influence PC activity including e...

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Veröffentlicht in:PloS one 2017-06, Vol.12 (6), p.e0179347-e0179347
Hauptverfasser: Amat, Samantha B, Rowan, Matthew J M, Gaffield, Michael A, Bonnan, Audrey, Kikuchi, Chikako, Taniguchi, Hiroki, Christie, Jason M
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container_start_page e0179347
container_title PloS one
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creator Amat, Samantha B
Rowan, Matthew J M
Gaffield, Michael A
Bonnan, Audrey
Kikuchi, Chikako
Taniguchi, Hiroki
Christie, Jason M
description The cerebellar system helps modulate and fine-tune motor action. Purkinje cells (PCs) provide the sole output of the cerebellar cortex, therefore, any cerebellar involvement in motor activity must be driven by changes in PC firing rates. Several different cell types influence PC activity including excitatory input from parallel fibers and inhibition from molecular layer interneurons (MLIs). Similar to PCs, MLI activity is driven by parallel fibers, therefore, MLIs provide feed-forward inhibition onto PCs. To aid in the experimental assessment of how molecular layer inhibition contributes to cerebellar function and motor behavior, we characterized a new knock-in mouse line with Cre recombinase expression under control of endogenous c-kit transcriptional machinery. Using these engineered c-Kit mice, we were able to obtain high levels of conditional MLI transduction in adult mice using Cre-dependent viral vectors without any PC or granule cell labeling. We then used the mouse line to target MLIs for activity perturbation in vitro using opto- and chemogenetics.
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Purkinje cells (PCs) provide the sole output of the cerebellar cortex, therefore, any cerebellar involvement in motor activity must be driven by changes in PC firing rates. Several different cell types influence PC activity including excitatory input from parallel fibers and inhibition from molecular layer interneurons (MLIs). Similar to PCs, MLI activity is driven by parallel fibers, therefore, MLIs provide feed-forward inhibition onto PCs. To aid in the experimental assessment of how molecular layer inhibition contributes to cerebellar function and motor behavior, we characterized a new knock-in mouse line with Cre recombinase expression under control of endogenous c-kit transcriptional machinery. Using these engineered c-Kit mice, we were able to obtain high levels of conditional MLI transduction in adult mice using Cre-dependent viral vectors without any PC or granule cell labeling. 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Purkinje cells (PCs) provide the sole output of the cerebellar cortex, therefore, any cerebellar involvement in motor activity must be driven by changes in PC firing rates. Several different cell types influence PC activity including excitatory input from parallel fibers and inhibition from molecular layer interneurons (MLIs). Similar to PCs, MLI activity is driven by parallel fibers, therefore, MLIs provide feed-forward inhibition onto PCs. To aid in the experimental assessment of how molecular layer inhibition contributes to cerebellar function and motor behavior, we characterized a new knock-in mouse line with Cre recombinase expression under control of endogenous c-kit transcriptional machinery. Using these engineered c-Kit mice, we were able to obtain high levels of conditional MLI transduction in adult mice using Cre-dependent viral vectors without any PC or granule cell labeling. We then used the mouse line to target MLIs for activity perturbation in vitro using opto- and chemogenetics.</abstract><cop>United States</cop><pub>Public Library of Science</pub><pmid>28658323</pmid><doi>10.1371/journal.pone.0179347</doi><tpages>e0179347</tpages><orcidid>https://orcid.org/0000-0003-0276-2554</orcidid><oa>free_for_read</oa></addata></record>
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subjects Action Potentials - physiology
Animals
Biology and Life Sciences
c-Kit protein
Cerebellar Cortex - cytology
Cerebellar Cortex - metabolism
Cerebellum
Cerebellum - cytology
Cerebellum - metabolism
Cloning
Cortex (motor)
Cre recombinase
Fibers
Gene expression
Genetic engineering
In vitro methods and tests
Inhibition
Interneurons
Interneurons - cytology
Interneurons - metabolism
Kinases
Machinery
Machinery and equipment
Medicine and Health Sciences
Mice
Mice, Transgenic
Motor activity
Motor task performance
Neurosciences
Parallel fibers
Principal components analysis
Proto-Oncogene Proteins c-kit - genetics
Proto-Oncogene Proteins c-kit - metabolism
Purkinje cells
Recombinase
Research and Analysis Methods
Transcription
title Using c-kit to genetically target cerebellar molecular layer interneurons in adult mice
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