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Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency

Mutations in the homeobox gene SHOX cause SHOX deficiency, a condition with clinical manifestations ranging from short stature without dysmorphic signs to severe mesomelic skeletal dysplasia. In rare cases, individuals with SHOX deficiency are asymptomatic. To elucidate the factors that modify disea...

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Autores principales: Montalbano, Antonino, Juergensen, Lonny, Roeth, Ralph, Weiss, Birgit, Fukami, Maki, Fricke‐Otto, Susanne, Binder, Gerhard, Ogata, Tsutomu, Decker, Eva, Nuernberg, Gudrun, Hassel, David, Rappold, Gudrun A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5167135/
https://www.ncbi.nlm.nih.gov/pubmed/27861128
http://dx.doi.org/10.15252/emmm.201606623
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author Montalbano, Antonino
Juergensen, Lonny
Roeth, Ralph
Weiss, Birgit
Fukami, Maki
Fricke‐Otto, Susanne
Binder, Gerhard
Ogata, Tsutomu
Decker, Eva
Nuernberg, Gudrun
Hassel, David
Rappold, Gudrun A
author_facet Montalbano, Antonino
Juergensen, Lonny
Roeth, Ralph
Weiss, Birgit
Fukami, Maki
Fricke‐Otto, Susanne
Binder, Gerhard
Ogata, Tsutomu
Decker, Eva
Nuernberg, Gudrun
Hassel, David
Rappold, Gudrun A
author_sort Montalbano, Antonino
collection PubMed
description Mutations in the homeobox gene SHOX cause SHOX deficiency, a condition with clinical manifestations ranging from short stature without dysmorphic signs to severe mesomelic skeletal dysplasia. In rare cases, individuals with SHOX deficiency are asymptomatic. To elucidate the factors that modify disease severity/penetrance, we studied a three‐generation family with SHOX deficiency. The variant p.Phe508Cys of the retinoic acid catabolizing enzyme CYP26C1 co‐segregated with the SHOX variant p.Val161Ala in the affected individuals, while the SHOX mutant alone was present in asymptomatic individuals. Two further cases with SHOX deficiency and damaging CYP26C1 variants were identified in a cohort of 68 individuals with LWD. The identified CYP26C1 variants affected its catabolic activity, leading to an increased level of retinoic acid. High levels of retinoic acid significantly decrease SHOX expression in human primary chondrocytes and zebrafish embryos. Individual morpholino knockdown of either gene shortens the pectoral fins, whereas depletion of both genes leads to a more severe phenotype. Together, our findings describe CYP26C1 as the first genetic modifier for SHOX deficiency.
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spelling pubmed-51671352016-12-28 Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency Montalbano, Antonino Juergensen, Lonny Roeth, Ralph Weiss, Birgit Fukami, Maki Fricke‐Otto, Susanne Binder, Gerhard Ogata, Tsutomu Decker, Eva Nuernberg, Gudrun Hassel, David Rappold, Gudrun A EMBO Mol Med Research Articles Mutations in the homeobox gene SHOX cause SHOX deficiency, a condition with clinical manifestations ranging from short stature without dysmorphic signs to severe mesomelic skeletal dysplasia. In rare cases, individuals with SHOX deficiency are asymptomatic. To elucidate the factors that modify disease severity/penetrance, we studied a three‐generation family with SHOX deficiency. The variant p.Phe508Cys of the retinoic acid catabolizing enzyme CYP26C1 co‐segregated with the SHOX variant p.Val161Ala in the affected individuals, while the SHOX mutant alone was present in asymptomatic individuals. Two further cases with SHOX deficiency and damaging CYP26C1 variants were identified in a cohort of 68 individuals with LWD. The identified CYP26C1 variants affected its catabolic activity, leading to an increased level of retinoic acid. High levels of retinoic acid significantly decrease SHOX expression in human primary chondrocytes and zebrafish embryos. Individual morpholino knockdown of either gene shortens the pectoral fins, whereas depletion of both genes leads to a more severe phenotype. Together, our findings describe CYP26C1 as the first genetic modifier for SHOX deficiency. John Wiley and Sons Inc. 2016-11-14 2016-12 /pmc/articles/PMC5167135/ /pubmed/27861128 http://dx.doi.org/10.15252/emmm.201606623 Text en © 2016 The Authors. Published under the terms of the CC BY 4.0 license This is an open access article under the terms of the Creative Commons Attribution 4.0 (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Montalbano, Antonino
Juergensen, Lonny
Roeth, Ralph
Weiss, Birgit
Fukami, Maki
Fricke‐Otto, Susanne
Binder, Gerhard
Ogata, Tsutomu
Decker, Eva
Nuernberg, Gudrun
Hassel, David
Rappold, Gudrun A
Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency
title Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency
title_full Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency
title_fullStr Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency
title_full_unstemmed Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency
title_short Retinoic acid catabolizing enzyme CYP26C1 is a genetic modifier in SHOX deficiency
title_sort retinoic acid catabolizing enzyme cyp26c1 is a genetic modifier in shox deficiency
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5167135/
https://www.ncbi.nlm.nih.gov/pubmed/27861128
http://dx.doi.org/10.15252/emmm.201606623
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