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HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations

Structural variants (SVs) can affect protein-coding sequences as well as gene regulatory elements. However, SVs disrupting protein-coding sequences that also function as cis-regulatory elements remain largely uncharacterized. Here, we show that craniosynostosis patients with SVs containing the histo...

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Autores principales: Hirsch, Naama, Dahan, Idit, D'haene, Eva, Avni, Matan, Vergult, Sarah, Vidal-García, Marta, Magini, Pamela, Graziano, Claudio, Severi, Giulia, Bonora, Elena, Nardone, Anna Maria, Brancati, Francesco, Fernández-Jaén, Alberto, Rory, Olson J., Hallgrímsson, Benedikt, Birnbaum, Ramon Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9341515/
https://www.ncbi.nlm.nih.gov/pubmed/35710300
http://dx.doi.org/10.1101/gr.276196.121
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author Hirsch, Naama
Dahan, Idit
D'haene, Eva
Avni, Matan
Vergult, Sarah
Vidal-García, Marta
Magini, Pamela
Graziano, Claudio
Severi, Giulia
Bonora, Elena
Nardone, Anna Maria
Brancati, Francesco
Fernández-Jaén, Alberto
Rory, Olson J.
Hallgrímsson, Benedikt
Birnbaum, Ramon Y.
author_facet Hirsch, Naama
Dahan, Idit
D'haene, Eva
Avni, Matan
Vergult, Sarah
Vidal-García, Marta
Magini, Pamela
Graziano, Claudio
Severi, Giulia
Bonora, Elena
Nardone, Anna Maria
Brancati, Francesco
Fernández-Jaén, Alberto
Rory, Olson J.
Hallgrímsson, Benedikt
Birnbaum, Ramon Y.
author_sort Hirsch, Naama
collection PubMed
description Structural variants (SVs) can affect protein-coding sequences as well as gene regulatory elements. However, SVs disrupting protein-coding sequences that also function as cis-regulatory elements remain largely uncharacterized. Here, we show that craniosynostosis patients with SVs containing the histone deacetylase 9 (HDAC9) protein-coding sequence are associated with disruption of TWIST1 regulatory elements that reside within the HDAC9 sequence. Based on SVs within the HDAC9‐TWIST1 locus, we defined the 3′-HDAC9 sequence as a critical TWIST1 regulatory region, encompassing craniofacial TWIST1 enhancers and CTCF sites. Deletions of either Twist1 enhancers (eTw5-7(Δ/Δ)) or CTCF site (CTCF-5(Δ/Δ)) within the Hdac9 protein-coding sequence led to decreased Twist1 expression and altered anterior/posterior limb expression patterns of SHH pathway genes. This decreased Twist1 expression results in a smaller sized and asymmetric skull and polydactyly that resembles Twist1(+/−) mouse phenotype. Chromatin conformation analysis revealed that the Twist1 promoter interacts with Hdac9 sequences that encompass Twist1 enhancers and a CTCF site, and that interactions depended on the presence of both regulatory regions. Finally, a large inversion of the entire Hdac9 sequence (Hdac9(INV/+)) in mice that does not disrupt Hdac9 expression but repositions Twist1 regulatory elements showed decreased Twist1 expression and led to a craniosynostosis-like phenotype and polydactyly. Thus, our study elucidates essential components of TWIST1 transcriptional machinery that reside within the HDAC9 sequence. It suggests that SVs encompassing protein-coding sequences could lead to a phenotype that is not attributed to its protein function but rather to a disruption of the transcriptional regulation of a nearby gene.
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spelling pubmed-93415152022-08-16 HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations Hirsch, Naama Dahan, Idit D'haene, Eva Avni, Matan Vergult, Sarah Vidal-García, Marta Magini, Pamela Graziano, Claudio Severi, Giulia Bonora, Elena Nardone, Anna Maria Brancati, Francesco Fernández-Jaén, Alberto Rory, Olson J. Hallgrímsson, Benedikt Birnbaum, Ramon Y. Genome Res Research Structural variants (SVs) can affect protein-coding sequences as well as gene regulatory elements. However, SVs disrupting protein-coding sequences that also function as cis-regulatory elements remain largely uncharacterized. Here, we show that craniosynostosis patients with SVs containing the histone deacetylase 9 (HDAC9) protein-coding sequence are associated with disruption of TWIST1 regulatory elements that reside within the HDAC9 sequence. Based on SVs within the HDAC9‐TWIST1 locus, we defined the 3′-HDAC9 sequence as a critical TWIST1 regulatory region, encompassing craniofacial TWIST1 enhancers and CTCF sites. Deletions of either Twist1 enhancers (eTw5-7(Δ/Δ)) or CTCF site (CTCF-5(Δ/Δ)) within the Hdac9 protein-coding sequence led to decreased Twist1 expression and altered anterior/posterior limb expression patterns of SHH pathway genes. This decreased Twist1 expression results in a smaller sized and asymmetric skull and polydactyly that resembles Twist1(+/−) mouse phenotype. Chromatin conformation analysis revealed that the Twist1 promoter interacts with Hdac9 sequences that encompass Twist1 enhancers and a CTCF site, and that interactions depended on the presence of both regulatory regions. Finally, a large inversion of the entire Hdac9 sequence (Hdac9(INV/+)) in mice that does not disrupt Hdac9 expression but repositions Twist1 regulatory elements showed decreased Twist1 expression and led to a craniosynostosis-like phenotype and polydactyly. Thus, our study elucidates essential components of TWIST1 transcriptional machinery that reside within the HDAC9 sequence. It suggests that SVs encompassing protein-coding sequences could lead to a phenotype that is not attributed to its protein function but rather to a disruption of the transcriptional regulation of a nearby gene. Cold Spring Harbor Laboratory Press 2022-07 /pmc/articles/PMC9341515/ /pubmed/35710300 http://dx.doi.org/10.1101/gr.276196.121 Text en © 2022 Hirsch et al.; Published by Cold Spring Harbor Laboratory Press https://creativecommons.org/licenses/by-nc/4.0/This article, published in Genome Research, is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) .
spellingShingle Research
Hirsch, Naama
Dahan, Idit
D'haene, Eva
Avni, Matan
Vergult, Sarah
Vidal-García, Marta
Magini, Pamela
Graziano, Claudio
Severi, Giulia
Bonora, Elena
Nardone, Anna Maria
Brancati, Francesco
Fernández-Jaén, Alberto
Rory, Olson J.
Hallgrímsson, Benedikt
Birnbaum, Ramon Y.
HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations
title HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations
title_full HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations
title_fullStr HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations
title_full_unstemmed HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations
title_short HDAC9 structural variants disrupting TWIST1 transcriptional regulation lead to craniofacial and limb malformations
title_sort hdac9 structural variants disrupting twist1 transcriptional regulation lead to craniofacial and limb malformations
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9341515/
https://www.ncbi.nlm.nih.gov/pubmed/35710300
http://dx.doi.org/10.1101/gr.276196.121
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