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Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome

Histone deacetylases play crucial roles in the regulation of chromatin structure and gene expression in the eukaryotic cell, and disruption of their activity causes a wide range of developmental disorders in humans. Loss-of-function alleles of HDAC4, a founding member of the class IIa deacetylases,...

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Autores principales: Wakeling, Emma, McEntagart, Meriel, Bruccoleri, Michael, Shaw-Smith, Charles, Stals, Karen L., Wakeling, Matthew, Barnicoat, Angela, Beesley, Clare, Hanson-Kahn, Andrea K., Kukolich, Mary, Stevenson, David A., Campeau, Philippe M., Ellard, Sian, Elsea, Sarah H., Yang, Xiang-Jiao, Caswell, Richard C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7841527/
https://www.ncbi.nlm.nih.gov/pubmed/33537682
http://dx.doi.org/10.1016/j.xhgg.2020.100015
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author Wakeling, Emma
McEntagart, Meriel
Bruccoleri, Michael
Shaw-Smith, Charles
Stals, Karen L.
Wakeling, Matthew
Barnicoat, Angela
Beesley, Clare
Hanson-Kahn, Andrea K.
Kukolich, Mary
Stevenson, David A.
Campeau, Philippe M.
Ellard, Sian
Elsea, Sarah H.
Yang, Xiang-Jiao
Caswell, Richard C.
author_facet Wakeling, Emma
McEntagart, Meriel
Bruccoleri, Michael
Shaw-Smith, Charles
Stals, Karen L.
Wakeling, Matthew
Barnicoat, Angela
Beesley, Clare
Hanson-Kahn, Andrea K.
Kukolich, Mary
Stevenson, David A.
Campeau, Philippe M.
Ellard, Sian
Elsea, Sarah H.
Yang, Xiang-Jiao
Caswell, Richard C.
author_sort Wakeling, Emma
collection PubMed
description Histone deacetylases play crucial roles in the regulation of chromatin structure and gene expression in the eukaryotic cell, and disruption of their activity causes a wide range of developmental disorders in humans. Loss-of-function alleles of HDAC4, a founding member of the class IIa deacetylases, have been reported in brachydactyly-mental retardation syndrome (BDMR). However, while disruption of HDAC4 activity and deregulation of its downstream targets may contribute to the BDMR phenotype, loss of HDAC4 function usually occurs as part of larger deletions of chromosome 2q37; BDMR is also known as chromosome 2q37 deletion syndrome, and the precise role of HDAC4 within the phenotype remains uncertain. Thus, identification of missense variants should shed new light on the role of HDAC4 in normal development. Here, we report seven unrelated individuals with a phenotype distinct from that of BDMR, all of whom have heterozygous de novo missense variants that affect a major regulatory site of HDAC4, required for signal-dependent 14-3-3 binding and nucleocytoplasmic shuttling. Two individuals possess variants altering Thr244 or Glu247, whereas the remaining five all carry variants altering Pro248, a key residue for 14-3-3 binding. We propose that the variants in all seven individuals impair 14-3-3 binding (as confirmed for the first two variants by immunoprecipitation assays), thereby identifying deregulation of HDAC4 as a pathological mechanism in a previously uncharacterized developmental disorder.
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spelling pubmed-78415272021-02-01 Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome Wakeling, Emma McEntagart, Meriel Bruccoleri, Michael Shaw-Smith, Charles Stals, Karen L. Wakeling, Matthew Barnicoat, Angela Beesley, Clare Hanson-Kahn, Andrea K. Kukolich, Mary Stevenson, David A. Campeau, Philippe M. Ellard, Sian Elsea, Sarah H. Yang, Xiang-Jiao Caswell, Richard C. HGG Adv Article Histone deacetylases play crucial roles in the regulation of chromatin structure and gene expression in the eukaryotic cell, and disruption of their activity causes a wide range of developmental disorders in humans. Loss-of-function alleles of HDAC4, a founding member of the class IIa deacetylases, have been reported in brachydactyly-mental retardation syndrome (BDMR). However, while disruption of HDAC4 activity and deregulation of its downstream targets may contribute to the BDMR phenotype, loss of HDAC4 function usually occurs as part of larger deletions of chromosome 2q37; BDMR is also known as chromosome 2q37 deletion syndrome, and the precise role of HDAC4 within the phenotype remains uncertain. Thus, identification of missense variants should shed new light on the role of HDAC4 in normal development. Here, we report seven unrelated individuals with a phenotype distinct from that of BDMR, all of whom have heterozygous de novo missense variants that affect a major regulatory site of HDAC4, required for signal-dependent 14-3-3 binding and nucleocytoplasmic shuttling. Two individuals possess variants altering Thr244 or Glu247, whereas the remaining five all carry variants altering Pro248, a key residue for 14-3-3 binding. We propose that the variants in all seven individuals impair 14-3-3 binding (as confirmed for the first two variants by immunoprecipitation assays), thereby identifying deregulation of HDAC4 as a pathological mechanism in a previously uncharacterized developmental disorder. Elsevier 2020-11-21 /pmc/articles/PMC7841527/ /pubmed/33537682 http://dx.doi.org/10.1016/j.xhgg.2020.100015 Text en © 2020 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wakeling, Emma
McEntagart, Meriel
Bruccoleri, Michael
Shaw-Smith, Charles
Stals, Karen L.
Wakeling, Matthew
Barnicoat, Angela
Beesley, Clare
Hanson-Kahn, Andrea K.
Kukolich, Mary
Stevenson, David A.
Campeau, Philippe M.
Ellard, Sian
Elsea, Sarah H.
Yang, Xiang-Jiao
Caswell, Richard C.
Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome
title Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome
title_full Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome
title_fullStr Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome
title_full_unstemmed Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome
title_short Missense substitutions at a conserved 14-3-3 binding site in HDAC4 cause a novel intellectual disability syndrome
title_sort missense substitutions at a conserved 14-3-3 binding site in hdac4 cause a novel intellectual disability syndrome
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7841527/
https://www.ncbi.nlm.nih.gov/pubmed/33537682
http://dx.doi.org/10.1016/j.xhgg.2020.100015
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