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TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome

TBX3 is a member of the T-box family of transcription factors with critical roles in development, oncogenesis, cell fate, and tissue homeostasis. TBX3 mutations in humans cause complex congenital malformations and Ulnar-mammary syndrome. Previous investigations into TBX3 function focused on its acti...

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Autores principales: Kumar P., Pavan, Franklin, Sarah, Emechebe, Uchenna, Hu, Hao, Moore, Barry, Lehman, Chris, Yandell, Mark, Moon, Anne M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3967948/
https://www.ncbi.nlm.nih.gov/pubmed/24675841
http://dx.doi.org/10.1371/journal.pgen.1004247
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author Kumar P., Pavan
Franklin, Sarah
Emechebe, Uchenna
Hu, Hao
Moore, Barry
Lehman, Chris
Yandell, Mark
Moon, Anne M.
author_facet Kumar P., Pavan
Franklin, Sarah
Emechebe, Uchenna
Hu, Hao
Moore, Barry
Lehman, Chris
Yandell, Mark
Moon, Anne M.
author_sort Kumar P., Pavan
collection PubMed
description TBX3 is a member of the T-box family of transcription factors with critical roles in development, oncogenesis, cell fate, and tissue homeostasis. TBX3 mutations in humans cause complex congenital malformations and Ulnar-mammary syndrome. Previous investigations into TBX3 function focused on its activity as a transcriptional repressor. We used an unbiased proteomic approach to identify TBX3 interacting proteins in vivo and discovered that TBX3 interacts with multiple mRNA splicing factors and RNA metabolic proteins. We discovered that TBX3 regulates alternative splicing in vivo and can promote or inhibit splicing depending on context and transcript. TBX3 associates with alternatively spliced mRNAs and binds RNA directly. TBX3 binds RNAs containing TBX binding motifs, and these motifs are required for regulation of splicing. Our study reveals that TBX3 mutations seen in humans with UMS disrupt its splicing regulatory function. The pleiotropic effects of TBX3 mutations in humans and mice likely result from disrupting at least two molecular functions of this protein: transcriptional regulation and pre-mRNA splicing.
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spelling pubmed-39679482014-04-01 TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome Kumar P., Pavan Franklin, Sarah Emechebe, Uchenna Hu, Hao Moore, Barry Lehman, Chris Yandell, Mark Moon, Anne M. PLoS Genet Research Article TBX3 is a member of the T-box family of transcription factors with critical roles in development, oncogenesis, cell fate, and tissue homeostasis. TBX3 mutations in humans cause complex congenital malformations and Ulnar-mammary syndrome. Previous investigations into TBX3 function focused on its activity as a transcriptional repressor. We used an unbiased proteomic approach to identify TBX3 interacting proteins in vivo and discovered that TBX3 interacts with multiple mRNA splicing factors and RNA metabolic proteins. We discovered that TBX3 regulates alternative splicing in vivo and can promote or inhibit splicing depending on context and transcript. TBX3 associates with alternatively spliced mRNAs and binds RNA directly. TBX3 binds RNAs containing TBX binding motifs, and these motifs are required for regulation of splicing. Our study reveals that TBX3 mutations seen in humans with UMS disrupt its splicing regulatory function. The pleiotropic effects of TBX3 mutations in humans and mice likely result from disrupting at least two molecular functions of this protein: transcriptional regulation and pre-mRNA splicing. Public Library of Science 2014-03-27 /pmc/articles/PMC3967948/ /pubmed/24675841 http://dx.doi.org/10.1371/journal.pgen.1004247 Text en © 2014 Kumar P http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Kumar P., Pavan
Franklin, Sarah
Emechebe, Uchenna
Hu, Hao
Moore, Barry
Lehman, Chris
Yandell, Mark
Moon, Anne M.
TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome
title TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome
title_full TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome
title_fullStr TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome
title_full_unstemmed TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome
title_short TBX3 Regulates Splicing In Vivo: A Novel Molecular Mechanism for Ulnar-Mammary Syndrome
title_sort tbx3 regulates splicing in vivo: a novel molecular mechanism for ulnar-mammary syndrome
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3967948/
https://www.ncbi.nlm.nih.gov/pubmed/24675841
http://dx.doi.org/10.1371/journal.pgen.1004247
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