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Alternative splicing regulation of membrane trafficking genes during myogenesis

Alternative splicing transitions occur during organ development, and, in numerous diseases, splicing programs revert to fetal isoform expression. We previously found that extensive splicing changes occur during postnatal mouse heart development in genes encoding proteins involved in vesicle-mediated...

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Autores principales: Hinkle, Emma R., Wiedner, Hannah J., Torres, Eduardo V., Jackson, Micaela, Black, Adam J., Blue, R. Eric, Harris, Sarah E., Guzman, Bryan B., Gentile, Gabrielle M., Lee, Eunice Y., Tsai, Yi-Hsuan, Parker, Joel, Dominguez, Daniel, Giudice, Jimena
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/PMC8925968/
https://www.ncbi.nlm.nih.gov/pubmed/35082143
http://dx.doi.org/10.1261/rna.078993.121
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author Hinkle, Emma R.
Wiedner, Hannah J.
Torres, Eduardo V.
Jackson, Micaela
Black, Adam J.
Blue, R. Eric
Harris, Sarah E.
Guzman, Bryan B.
Gentile, Gabrielle M.
Lee, Eunice Y.
Tsai, Yi-Hsuan
Parker, Joel
Dominguez, Daniel
Giudice, Jimena
author_facet Hinkle, Emma R.
Wiedner, Hannah J.
Torres, Eduardo V.
Jackson, Micaela
Black, Adam J.
Blue, R. Eric
Harris, Sarah E.
Guzman, Bryan B.
Gentile, Gabrielle M.
Lee, Eunice Y.
Tsai, Yi-Hsuan
Parker, Joel
Dominguez, Daniel
Giudice, Jimena
author_sort Hinkle, Emma R.
collection PubMed
description Alternative splicing transitions occur during organ development, and, in numerous diseases, splicing programs revert to fetal isoform expression. We previously found that extensive splicing changes occur during postnatal mouse heart development in genes encoding proteins involved in vesicle-mediated trafficking. However, the regulatory mechanisms of this splicing-trafficking network are unknown. Here, we found that membrane trafficking genes are alternatively spliced in a tissue-specific manner, with striated muscles exhibiting the highest levels of alternative exon inclusion. Treatment of differentiated muscle cells with chromatin-modifying drugs altered exon inclusion in muscle cells. Examination of several RNA-binding proteins revealed that the poly-pyrimidine tract binding protein 1 (PTBP1) and quaking regulate splicing of trafficking genes during myogenesis, and that removal of PTBP1 motifs prevented PTBP1 from binding its RNA target. These findings enhance our understanding of developmental splicing regulation of membrane trafficking proteins which might have implications for muscle disease pathogenesis.
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spelling pubmed-89259682023-04-01 Alternative splicing regulation of membrane trafficking genes during myogenesis Hinkle, Emma R. Wiedner, Hannah J. Torres, Eduardo V. Jackson, Micaela Black, Adam J. Blue, R. Eric Harris, Sarah E. Guzman, Bryan B. Gentile, Gabrielle M. Lee, Eunice Y. Tsai, Yi-Hsuan Parker, Joel Dominguez, Daniel Giudice, Jimena RNA Article Alternative splicing transitions occur during organ development, and, in numerous diseases, splicing programs revert to fetal isoform expression. We previously found that extensive splicing changes occur during postnatal mouse heart development in genes encoding proteins involved in vesicle-mediated trafficking. However, the regulatory mechanisms of this splicing-trafficking network are unknown. Here, we found that membrane trafficking genes are alternatively spliced in a tissue-specific manner, with striated muscles exhibiting the highest levels of alternative exon inclusion. Treatment of differentiated muscle cells with chromatin-modifying drugs altered exon inclusion in muscle cells. Examination of several RNA-binding proteins revealed that the poly-pyrimidine tract binding protein 1 (PTBP1) and quaking regulate splicing of trafficking genes during myogenesis, and that removal of PTBP1 motifs prevented PTBP1 from binding its RNA target. These findings enhance our understanding of developmental splicing regulation of membrane trafficking proteins which might have implications for muscle disease pathogenesis. Cold Spring Harbor Laboratory Press 2022-04 /pmc/articles/PMC8925968/ /pubmed/35082143 http://dx.doi.org/10.1261/rna.078993.121 Text en © 2022 Hinkle et al.; Published by Cold Spring Harbor Laboratory Press for the RNA Society https://creativecommons.org/licenses/by-nc/4.0/This article is distributed exclusively by the RNA Society for the first 12 months after the full-issue publication date (see http://rnajournal.cshlp.org/site/misc/terms.xhtml). After 12 months, it 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 Article
Hinkle, Emma R.
Wiedner, Hannah J.
Torres, Eduardo V.
Jackson, Micaela
Black, Adam J.
Blue, R. Eric
Harris, Sarah E.
Guzman, Bryan B.
Gentile, Gabrielle M.
Lee, Eunice Y.
Tsai, Yi-Hsuan
Parker, Joel
Dominguez, Daniel
Giudice, Jimena
Alternative splicing regulation of membrane trafficking genes during myogenesis
title Alternative splicing regulation of membrane trafficking genes during myogenesis
title_full Alternative splicing regulation of membrane trafficking genes during myogenesis
title_fullStr Alternative splicing regulation of membrane trafficking genes during myogenesis
title_full_unstemmed Alternative splicing regulation of membrane trafficking genes during myogenesis
title_short Alternative splicing regulation of membrane trafficking genes during myogenesis
title_sort alternative splicing regulation of membrane trafficking genes during myogenesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8925968/
https://www.ncbi.nlm.nih.gov/pubmed/35082143
http://dx.doi.org/10.1261/rna.078993.121
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