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Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development

Cerebrospinal fluid flow is crucial for neurodevelopment and homeostasis of the ventricular system of the brain, with localized flow being established by the polarized beating of the ependymal cell (EC) cilia. Here, we report a homozygous one base-pair deletion, c.1193delT (p.Leu398Glnfs*2), in the...

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Autores principales: Konjikusic, Mia J., Yeetong, Patra, Boswell, Curtis W., Lee, Chanjae, Roberson, Elle C., Ittiwut, Rungnapa, Suphapeetiporn, Kanya, Ciruna, Brian, Gurnett, Christina A., Wallingford, John B., Shotelersuk, Vorasuk, Gray, Ryan S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6307780/
https://www.ncbi.nlm.nih.gov/pubmed/30475797
http://dx.doi.org/10.1371/journal.pgen.1007817
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author Konjikusic, Mia J.
Yeetong, Patra
Boswell, Curtis W.
Lee, Chanjae
Roberson, Elle C.
Ittiwut, Rungnapa
Suphapeetiporn, Kanya
Ciruna, Brian
Gurnett, Christina A.
Wallingford, John B.
Shotelersuk, Vorasuk
Gray, Ryan S.
author_facet Konjikusic, Mia J.
Yeetong, Patra
Boswell, Curtis W.
Lee, Chanjae
Roberson, Elle C.
Ittiwut, Rungnapa
Suphapeetiporn, Kanya
Ciruna, Brian
Gurnett, Christina A.
Wallingford, John B.
Shotelersuk, Vorasuk
Gray, Ryan S.
author_sort Konjikusic, Mia J.
collection PubMed
description Cerebrospinal fluid flow is crucial for neurodevelopment and homeostasis of the ventricular system of the brain, with localized flow being established by the polarized beating of the ependymal cell (EC) cilia. Here, we report a homozygous one base-pair deletion, c.1193delT (p.Leu398Glnfs*2), in the Kinesin Family Member 6 (KIF6) gene in a child displaying neurodevelopmental defects and intellectual disability. To test the pathogenicity of this novel human KIF6 mutation we engineered an analogous C-terminal truncating mutation in mouse. These mutant mice display severe, postnatal-onset hydrocephalus. We generated a Kif6-LacZ transgenic mouse strain and report expression specifically and uniquely within the ependymal cells (ECs) of the brain, without labeling other multiciliated mouse tissues. Analysis of Kif6 mutant mice with scanning electron microscopy (SEM) and immunofluorescence (IF) revealed specific defects in the formation of EC cilia, without obvious effect of cilia of other multiciliated tissues. Dilation of the ventricular system and defects in the formation of EC cilia were also observed in adult kif6 mutant zebrafish. Finally, we report Kif6-GFP localization at the axoneme and basal bodies of multi-ciliated cells (MCCs) of the mucociliary Xenopus epidermis. Overall, this work describes the first clinically-defined KIF6 homozygous null mutation in human and defines KIF6 as a conserved mediator of neurological development with a specific role for EC ciliogenesis in vertebrates.
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spelling pubmed-63077802019-01-08 Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development Konjikusic, Mia J. Yeetong, Patra Boswell, Curtis W. Lee, Chanjae Roberson, Elle C. Ittiwut, Rungnapa Suphapeetiporn, Kanya Ciruna, Brian Gurnett, Christina A. Wallingford, John B. Shotelersuk, Vorasuk Gray, Ryan S. PLoS Genet Research Article Cerebrospinal fluid flow is crucial for neurodevelopment and homeostasis of the ventricular system of the brain, with localized flow being established by the polarized beating of the ependymal cell (EC) cilia. Here, we report a homozygous one base-pair deletion, c.1193delT (p.Leu398Glnfs*2), in the Kinesin Family Member 6 (KIF6) gene in a child displaying neurodevelopmental defects and intellectual disability. To test the pathogenicity of this novel human KIF6 mutation we engineered an analogous C-terminal truncating mutation in mouse. These mutant mice display severe, postnatal-onset hydrocephalus. We generated a Kif6-LacZ transgenic mouse strain and report expression specifically and uniquely within the ependymal cells (ECs) of the brain, without labeling other multiciliated mouse tissues. Analysis of Kif6 mutant mice with scanning electron microscopy (SEM) and immunofluorescence (IF) revealed specific defects in the formation of EC cilia, without obvious effect of cilia of other multiciliated tissues. Dilation of the ventricular system and defects in the formation of EC cilia were also observed in adult kif6 mutant zebrafish. Finally, we report Kif6-GFP localization at the axoneme and basal bodies of multi-ciliated cells (MCCs) of the mucociliary Xenopus epidermis. Overall, this work describes the first clinically-defined KIF6 homozygous null mutation in human and defines KIF6 as a conserved mediator of neurological development with a specific role for EC ciliogenesis in vertebrates. Public Library of Science 2018-11-26 /pmc/articles/PMC6307780/ /pubmed/30475797 http://dx.doi.org/10.1371/journal.pgen.1007817 Text en © 2018 Konjikusic 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
Konjikusic, Mia J.
Yeetong, Patra
Boswell, Curtis W.
Lee, Chanjae
Roberson, Elle C.
Ittiwut, Rungnapa
Suphapeetiporn, Kanya
Ciruna, Brian
Gurnett, Christina A.
Wallingford, John B.
Shotelersuk, Vorasuk
Gray, Ryan S.
Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development
title Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development
title_full Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development
title_fullStr Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development
title_full_unstemmed Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development
title_short Mutations in Kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development
title_sort mutations in kinesin family member 6 reveal specific role in ependymal cell ciliogenesis and human neurological development
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6307780/
https://www.ncbi.nlm.nih.gov/pubmed/30475797
http://dx.doi.org/10.1371/journal.pgen.1007817
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