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A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry

Spinal interneurons are critical modulators of motor circuit function. In the dorsal spinal cord, a set of interneurons called GABApre presynaptically inhibits proprioceptive sensory afferent terminals, thus negatively regulating sensory-motor signaling. Although deficits in presynaptic inhibition h...

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Autores principales: Zhang, Juliet, Weinrich, Jarret A.P., Russ, Jeffrey B., Comer, John D., Bommareddy, Praveen K., DiCasoli, Richard J., Wright, Christopher V.E., Li, Yuqing, van Roessel, Peter J., Kaltschmidt, Julia A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5658202/
https://www.ncbi.nlm.nih.gov/pubmed/29045835
http://dx.doi.org/10.1016/j.celrep.2017.09.079
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author Zhang, Juliet
Weinrich, Jarret A.P.
Russ, Jeffrey B.
Comer, John D.
Bommareddy, Praveen K.
DiCasoli, Richard J.
Wright, Christopher V.E.
Li, Yuqing
van Roessel, Peter J.
Kaltschmidt, Julia A.
author_facet Zhang, Juliet
Weinrich, Jarret A.P.
Russ, Jeffrey B.
Comer, John D.
Bommareddy, Praveen K.
DiCasoli, Richard J.
Wright, Christopher V.E.
Li, Yuqing
van Roessel, Peter J.
Kaltschmidt, Julia A.
author_sort Zhang, Juliet
collection PubMed
description Spinal interneurons are critical modulators of motor circuit function. In the dorsal spinal cord, a set of interneurons called GABApre presynaptically inhibits proprioceptive sensory afferent terminals, thus negatively regulating sensory-motor signaling. Although deficits in presynaptic inhibition have been inferred in human motor diseases, including dystonia, it remains unclear whether GABApre circuit components are altered in these conditions. Here, we use developmental timing to show that GABApre neurons are a late Ptf1a-expressing subclass and localize to the intermediate spinal cord. Using a microarray screen to identify genes expressed in this intermediate population, we find the kelch-like family member Klhl14, implicated in dystonia through its direct binding with torsion-dystonia-related protein Tor1a. Furthermore, in Tor1a mutant mice in which Klhl14 and Tor1a binding is disrupted, formation of GABApre sensory afferent synapses is impaired. Our findings suggest a potential contribution of GABApre neurons to the deficits in presynaptic inhibition observed in dystonia.
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spelling pubmed-56582022017-10-26 A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry Zhang, Juliet Weinrich, Jarret A.P. Russ, Jeffrey B. Comer, John D. Bommareddy, Praveen K. DiCasoli, Richard J. Wright, Christopher V.E. Li, Yuqing van Roessel, Peter J. Kaltschmidt, Julia A. Cell Rep Article Spinal interneurons are critical modulators of motor circuit function. In the dorsal spinal cord, a set of interneurons called GABApre presynaptically inhibits proprioceptive sensory afferent terminals, thus negatively regulating sensory-motor signaling. Although deficits in presynaptic inhibition have been inferred in human motor diseases, including dystonia, it remains unclear whether GABApre circuit components are altered in these conditions. Here, we use developmental timing to show that GABApre neurons are a late Ptf1a-expressing subclass and localize to the intermediate spinal cord. Using a microarray screen to identify genes expressed in this intermediate population, we find the kelch-like family member Klhl14, implicated in dystonia through its direct binding with torsion-dystonia-related protein Tor1a. Furthermore, in Tor1a mutant mice in which Klhl14 and Tor1a binding is disrupted, formation of GABApre sensory afferent synapses is impaired. Our findings suggest a potential contribution of GABApre neurons to the deficits in presynaptic inhibition observed in dystonia. 2017-10-17 /pmc/articles/PMC5658202/ /pubmed/29045835 http://dx.doi.org/10.1016/j.celrep.2017.09.079 Text en This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Zhang, Juliet
Weinrich, Jarret A.P.
Russ, Jeffrey B.
Comer, John D.
Bommareddy, Praveen K.
DiCasoli, Richard J.
Wright, Christopher V.E.
Li, Yuqing
van Roessel, Peter J.
Kaltschmidt, Julia A.
A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry
title A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry
title_full A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry
title_fullStr A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry
title_full_unstemmed A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry
title_short A Role for Dystonia-Associated Genes in Spinal GABAergic Interneuron Circuitry
title_sort role for dystonia-associated genes in spinal gabaergic interneuron circuitry
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5658202/
https://www.ncbi.nlm.nih.gov/pubmed/29045835
http://dx.doi.org/10.1016/j.celrep.2017.09.079
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