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Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain

Alternative pre-mRNA splicing has a major impact on cellular functions and development with the potential to fine-tune cellular localization, posttranslational modification, interaction properties, and expression levels of cognate proteins. The plasticity of regulation sets the stage for cells to ad...

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Autores principales: Dembowski, Jill A., An, Ping, Scoulos-Hanson, Maritsa, Yeo, Gene, Han, Joonhee, Fu, Xiang-Dong, Grabowski, Paula J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3447378/
https://www.ncbi.nlm.nih.gov/pubmed/23008758
http://dx.doi.org/10.1155/2012/816237
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author Dembowski, Jill A.
An, Ping
Scoulos-Hanson, Maritsa
Yeo, Gene
Han, Joonhee
Fu, Xiang-Dong
Grabowski, Paula J.
author_facet Dembowski, Jill A.
An, Ping
Scoulos-Hanson, Maritsa
Yeo, Gene
Han, Joonhee
Fu, Xiang-Dong
Grabowski, Paula J.
author_sort Dembowski, Jill A.
collection PubMed
description Alternative pre-mRNA splicing has a major impact on cellular functions and development with the potential to fine-tune cellular localization, posttranslational modification, interaction properties, and expression levels of cognate proteins. The plasticity of regulation sets the stage for cells to adjust the relative levels of spliced mRNA isoforms in response to stress or stimulation. As part of an exon profiling analysis of mouse cortical neurons stimulated with high KCl to induce membrane depolarization, we detected a previously unrecognized exon (E24a) of the CASK gene, which encodes for a conserved peptide insertion in the guanylate kinase interaction domain. Comparative sequence analysis shows that E24a appeared selectively in mammalian CASK genes as part of a >3,000 base pair intron insertion. We demonstrate that a combination of a naturally defective 5′ splice site and negative regulation by several splicing factors, including SC35 (SRSF2) and ASF/SF2 (SRSF1), drives E24a skipping in most cell types. However, this negative regulation is countered with an observed increase in E24a inclusion after neuronal stimulation and NMDA receptor signaling. Taken together, E24a is typically a skipped exon, which awakens during neuronal stimulation with the potential to diversify the protein interaction properties of the CASK polypeptide.
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spelling pubmed-34473782012-09-24 Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain Dembowski, Jill A. An, Ping Scoulos-Hanson, Maritsa Yeo, Gene Han, Joonhee Fu, Xiang-Dong Grabowski, Paula J. J Nucleic Acids Research Article Alternative pre-mRNA splicing has a major impact on cellular functions and development with the potential to fine-tune cellular localization, posttranslational modification, interaction properties, and expression levels of cognate proteins. The plasticity of regulation sets the stage for cells to adjust the relative levels of spliced mRNA isoforms in response to stress or stimulation. As part of an exon profiling analysis of mouse cortical neurons stimulated with high KCl to induce membrane depolarization, we detected a previously unrecognized exon (E24a) of the CASK gene, which encodes for a conserved peptide insertion in the guanylate kinase interaction domain. Comparative sequence analysis shows that E24a appeared selectively in mammalian CASK genes as part of a >3,000 base pair intron insertion. We demonstrate that a combination of a naturally defective 5′ splice site and negative regulation by several splicing factors, including SC35 (SRSF2) and ASF/SF2 (SRSF1), drives E24a skipping in most cell types. However, this negative regulation is countered with an observed increase in E24a inclusion after neuronal stimulation and NMDA receptor signaling. Taken together, E24a is typically a skipped exon, which awakens during neuronal stimulation with the potential to diversify the protein interaction properties of the CASK polypeptide. Hindawi Publishing Corporation 2012 2012-09-12 /pmc/articles/PMC3447378/ /pubmed/23008758 http://dx.doi.org/10.1155/2012/816237 Text en Copyright © 2012 Jill A. Dembowski et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Dembowski, Jill A.
An, Ping
Scoulos-Hanson, Maritsa
Yeo, Gene
Han, Joonhee
Fu, Xiang-Dong
Grabowski, Paula J.
Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain
title Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain
title_full Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain
title_fullStr Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain
title_full_unstemmed Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain
title_short Alternative Splicing of a Novel Inducible Exon Diversifies the CASK Guanylate Kinase Domain
title_sort alternative splicing of a novel inducible exon diversifies the cask guanylate kinase domain
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3447378/
https://www.ncbi.nlm.nih.gov/pubmed/23008758
http://dx.doi.org/10.1155/2012/816237
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