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A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking

The autosomal dominant spinocerebellar ataxias (SCAs) are a diverse group of neurological disorders anchored by the phenotypes of motor incoordination and cerebellar atrophy. Disease heterogeneity is appreciated through varying comorbidities: dysarthria, dysphagia, oculomotor and/or retinal abnormal...

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Autores principales: Khare, Swati, Nick, Jerelyn A., Zhang, Yalan, Galeano, Kira, Butler, Brittany, Khoshbouei, Habibeh, Rayaprolu, Sruti, Hathorn, Tyisha, Ranum, Laura P. W., Smithson, Lisa, Golde, Todd E., Paucar, Martin, Morse, Richard, Raff, Michael, Simon, Julie, Nordenskjöld, Magnus, Wirdefeldt, Karin, Rincon-Limas, Diego E., Lewis, Jada, Kaczmarek, Leonard K., Fernandez-Funez, Pedro, Nick, Harry S., Waters, Michael F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5414954/
https://www.ncbi.nlm.nih.gov/pubmed/28467418
http://dx.doi.org/10.1371/journal.pone.0173565
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author Khare, Swati
Nick, Jerelyn A.
Zhang, Yalan
Galeano, Kira
Butler, Brittany
Khoshbouei, Habibeh
Rayaprolu, Sruti
Hathorn, Tyisha
Ranum, Laura P. W.
Smithson, Lisa
Golde, Todd E.
Paucar, Martin
Morse, Richard
Raff, Michael
Simon, Julie
Nordenskjöld, Magnus
Wirdefeldt, Karin
Rincon-Limas, Diego E.
Lewis, Jada
Kaczmarek, Leonard K.
Fernandez-Funez, Pedro
Nick, Harry S.
Waters, Michael F.
author_facet Khare, Swati
Nick, Jerelyn A.
Zhang, Yalan
Galeano, Kira
Butler, Brittany
Khoshbouei, Habibeh
Rayaprolu, Sruti
Hathorn, Tyisha
Ranum, Laura P. W.
Smithson, Lisa
Golde, Todd E.
Paucar, Martin
Morse, Richard
Raff, Michael
Simon, Julie
Nordenskjöld, Magnus
Wirdefeldt, Karin
Rincon-Limas, Diego E.
Lewis, Jada
Kaczmarek, Leonard K.
Fernandez-Funez, Pedro
Nick, Harry S.
Waters, Michael F.
author_sort Khare, Swati
collection PubMed
description The autosomal dominant spinocerebellar ataxias (SCAs) are a diverse group of neurological disorders anchored by the phenotypes of motor incoordination and cerebellar atrophy. Disease heterogeneity is appreciated through varying comorbidities: dysarthria, dysphagia, oculomotor and/or retinal abnormalities, motor neuron pathology, epilepsy, cognitive impairment, autonomic dysfunction, and psychiatric manifestations. Our study focuses on SCA13, which is caused by several allelic variants in the voltage-gated potassium channel KCNC3 (Kv3.3). We detail the clinical phenotype of four SCA13 kindreds that confirm causation of the KCNC3(R423H) allele. The heralding features demonstrate congenital onset with non-progressive, neurodevelopmental cerebellar hypoplasia and lifetime improvement in motor and cognitive function that implicate compensatory neural mechanisms. Targeted expression of human KCNC3(R423H) in Drosophila triggers aberrant wing veins, maldeveloped eyes, and fused ommatidia consistent with the neurodevelopmental presentation of patients. Furthermore, human KCNC3(R423H) expression in mammalian cells results in altered glycosylation and aberrant retention of the channel in anterograde and/or endosomal vesicles. Confirmation of the absence of plasma membrane targeting was based on the loss of current conductance in cells expressing the mutant channel. Mechanistically, genetic studies in Drosophila, along with cellular and biophysical studies in mammalian systems, demonstrate the dominant negative effect exerted by the mutant on the wild-type (WT) protein, which explains dominant inheritance. We demonstrate that ocular co-expression of KCNC3(R423H) with Drosophila epidermal growth factor receptor (dEgfr) results in striking rescue of the eye phenotype, whereas KCNC3(R423H) expression in mammalian cells results in aberrant intracellular retention of human epidermal growth factor receptor (EGFR). Together, these results indicate that the neurodevelopmental consequences of KCNC3(R423H) may be mediated through indirect effects on EGFR signaling in the developing cerebellum. Our results therefore confirm the KCNC3(R423H) allele as causative for SCA13, through a dominant negative effect on KCNC3(WT) and links with EGFR that account for dominant inheritance, congenital onset, and disease pathology.
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spelling pubmed-54149542017-05-14 A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking Khare, Swati Nick, Jerelyn A. Zhang, Yalan Galeano, Kira Butler, Brittany Khoshbouei, Habibeh Rayaprolu, Sruti Hathorn, Tyisha Ranum, Laura P. W. Smithson, Lisa Golde, Todd E. Paucar, Martin Morse, Richard Raff, Michael Simon, Julie Nordenskjöld, Magnus Wirdefeldt, Karin Rincon-Limas, Diego E. Lewis, Jada Kaczmarek, Leonard K. Fernandez-Funez, Pedro Nick, Harry S. Waters, Michael F. PLoS One Research Article The autosomal dominant spinocerebellar ataxias (SCAs) are a diverse group of neurological disorders anchored by the phenotypes of motor incoordination and cerebellar atrophy. Disease heterogeneity is appreciated through varying comorbidities: dysarthria, dysphagia, oculomotor and/or retinal abnormalities, motor neuron pathology, epilepsy, cognitive impairment, autonomic dysfunction, and psychiatric manifestations. Our study focuses on SCA13, which is caused by several allelic variants in the voltage-gated potassium channel KCNC3 (Kv3.3). We detail the clinical phenotype of four SCA13 kindreds that confirm causation of the KCNC3(R423H) allele. The heralding features demonstrate congenital onset with non-progressive, neurodevelopmental cerebellar hypoplasia and lifetime improvement in motor and cognitive function that implicate compensatory neural mechanisms. Targeted expression of human KCNC3(R423H) in Drosophila triggers aberrant wing veins, maldeveloped eyes, and fused ommatidia consistent with the neurodevelopmental presentation of patients. Furthermore, human KCNC3(R423H) expression in mammalian cells results in altered glycosylation and aberrant retention of the channel in anterograde and/or endosomal vesicles. Confirmation of the absence of plasma membrane targeting was based on the loss of current conductance in cells expressing the mutant channel. Mechanistically, genetic studies in Drosophila, along with cellular and biophysical studies in mammalian systems, demonstrate the dominant negative effect exerted by the mutant on the wild-type (WT) protein, which explains dominant inheritance. We demonstrate that ocular co-expression of KCNC3(R423H) with Drosophila epidermal growth factor receptor (dEgfr) results in striking rescue of the eye phenotype, whereas KCNC3(R423H) expression in mammalian cells results in aberrant intracellular retention of human epidermal growth factor receptor (EGFR). Together, these results indicate that the neurodevelopmental consequences of KCNC3(R423H) may be mediated through indirect effects on EGFR signaling in the developing cerebellum. Our results therefore confirm the KCNC3(R423H) allele as causative for SCA13, through a dominant negative effect on KCNC3(WT) and links with EGFR that account for dominant inheritance, congenital onset, and disease pathology. Public Library of Science 2017-05-03 /pmc/articles/PMC5414954/ /pubmed/28467418 http://dx.doi.org/10.1371/journal.pone.0173565 Text en © 2017 Khare et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Khare, Swati
Nick, Jerelyn A.
Zhang, Yalan
Galeano, Kira
Butler, Brittany
Khoshbouei, Habibeh
Rayaprolu, Sruti
Hathorn, Tyisha
Ranum, Laura P. W.
Smithson, Lisa
Golde, Todd E.
Paucar, Martin
Morse, Richard
Raff, Michael
Simon, Julie
Nordenskjöld, Magnus
Wirdefeldt, Karin
Rincon-Limas, Diego E.
Lewis, Jada
Kaczmarek, Leonard K.
Fernandez-Funez, Pedro
Nick, Harry S.
Waters, Michael F.
A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking
title A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking
title_full A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking
title_fullStr A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking
title_full_unstemmed A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking
title_short A KCNC3 mutation causes a neurodevelopmental, non-progressive SCA13 subtype associated with dominant negative effects and aberrant EGFR trafficking
title_sort kcnc3 mutation causes a neurodevelopmental, non-progressive sca13 subtype associated with dominant negative effects and aberrant egfr trafficking
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5414954/
https://www.ncbi.nlm.nih.gov/pubmed/28467418
http://dx.doi.org/10.1371/journal.pone.0173565
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