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Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function

Ciliopathies are a group of genetic disorders caused by defective assembly or dysfunction of the primary cilium, a microtubule-based cellular organelle that plays a key role in developmental signalling. Ciliopathies are clinically grouped in a large number of overlapping disorders, including the oro...

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Autores principales: Cortés, Claudio R., McInerney-Leo, Aideen M., Vogel, Ida, Rondón Galeano, Maria C., Leo, Paul J., Harris, Jessica E., Anderson, Lisa K., Keith, Patricia A., Brown, Matthew A., Ramsing, Mette, Duncan, Emma L., Zankl, Andreas, Wicking, Carol
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4837335/
https://www.ncbi.nlm.nih.gov/pubmed/27094867
http://dx.doi.org/10.1038/srep24083
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author Cortés, Claudio R.
McInerney-Leo, Aideen M.
Vogel, Ida
Rondón Galeano, Maria C.
Leo, Paul J.
Harris, Jessica E.
Anderson, Lisa K.
Keith, Patricia A.
Brown, Matthew A.
Ramsing, Mette
Duncan, Emma L.
Zankl, Andreas
Wicking, Carol
author_facet Cortés, Claudio R.
McInerney-Leo, Aideen M.
Vogel, Ida
Rondón Galeano, Maria C.
Leo, Paul J.
Harris, Jessica E.
Anderson, Lisa K.
Keith, Patricia A.
Brown, Matthew A.
Ramsing, Mette
Duncan, Emma L.
Zankl, Andreas
Wicking, Carol
author_sort Cortés, Claudio R.
collection PubMed
description Ciliopathies are a group of genetic disorders caused by defective assembly or dysfunction of the primary cilium, a microtubule-based cellular organelle that plays a key role in developmental signalling. Ciliopathies are clinically grouped in a large number of overlapping disorders, including the orofaciodigital syndromes (OFDS), the short rib polydactyly syndromes and Jeune asphyxiating thoracic dystrophy. Recently, mutations in the gene encoding the centriolar protein C2CD3 have been described in two families with a new sub-type of OFDS (OFD14), with microcephaly and cerebral malformations. Here we describe a third family with novel compound heterozygous C2CD3 mutations in two fetuses with a different clinical presentation, dominated by skeletal dysplasia with no microcephaly. Analysis of fibroblast cultures derived from one of these fetuses revealed a reduced ability to form cilia, consistent with previous studies in C2cd3-mutant mouse and chicken cells. More detailed analyses support a role for C2CD3 in basal body maturation; but in contrast to previous mouse studies the normal recruitment of the distal appendage protein CEP164 suggests that this protein is not sufficient for efficient basal body maturation and subsequent axonemal extension in a C2CD3-defective background.
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spelling pubmed-48373352016-04-27 Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function Cortés, Claudio R. McInerney-Leo, Aideen M. Vogel, Ida Rondón Galeano, Maria C. Leo, Paul J. Harris, Jessica E. Anderson, Lisa K. Keith, Patricia A. Brown, Matthew A. Ramsing, Mette Duncan, Emma L. Zankl, Andreas Wicking, Carol Sci Rep Article Ciliopathies are a group of genetic disorders caused by defective assembly or dysfunction of the primary cilium, a microtubule-based cellular organelle that plays a key role in developmental signalling. Ciliopathies are clinically grouped in a large number of overlapping disorders, including the orofaciodigital syndromes (OFDS), the short rib polydactyly syndromes and Jeune asphyxiating thoracic dystrophy. Recently, mutations in the gene encoding the centriolar protein C2CD3 have been described in two families with a new sub-type of OFDS (OFD14), with microcephaly and cerebral malformations. Here we describe a third family with novel compound heterozygous C2CD3 mutations in two fetuses with a different clinical presentation, dominated by skeletal dysplasia with no microcephaly. Analysis of fibroblast cultures derived from one of these fetuses revealed a reduced ability to form cilia, consistent with previous studies in C2cd3-mutant mouse and chicken cells. More detailed analyses support a role for C2CD3 in basal body maturation; but in contrast to previous mouse studies the normal recruitment of the distal appendage protein CEP164 suggests that this protein is not sufficient for efficient basal body maturation and subsequent axonemal extension in a C2CD3-defective background. Nature Publishing Group 2016-04-20 /pmc/articles/PMC4837335/ /pubmed/27094867 http://dx.doi.org/10.1038/srep24083 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Cortés, Claudio R.
McInerney-Leo, Aideen M.
Vogel, Ida
Rondón Galeano, Maria C.
Leo, Paul J.
Harris, Jessica E.
Anderson, Lisa K.
Keith, Patricia A.
Brown, Matthew A.
Ramsing, Mette
Duncan, Emma L.
Zankl, Andreas
Wicking, Carol
Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function
title Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function
title_full Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function
title_fullStr Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function
title_full_unstemmed Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function
title_short Mutations in human C2CD3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered C2CD3 function
title_sort mutations in human c2cd3 cause skeletal dysplasia and provide new insights into phenotypic and cellular consequences of altered c2cd3 function
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4837335/
https://www.ncbi.nlm.nih.gov/pubmed/27094867
http://dx.doi.org/10.1038/srep24083
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