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A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs

Alternative pre-mRNA splicing is widely used to regulate gene expression by tuning the levels of tissue-specific mRNA isoforms. Few regulatory mechanisms are understood at the level of combinatorial control despite numerous sequences, distinct from splice sites, that have been shown to play roles in...

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Detalles Bibliográficos
Autores principales: Han, Kyoungha, Yeo, Gene, An, Ping, Burge, Christopher B, Grabowski, Paula J
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1079783/
https://www.ncbi.nlm.nih.gov/pubmed/15828859
http://dx.doi.org/10.1371/journal.pbio.0030158
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author Han, Kyoungha
Yeo, Gene
An, Ping
Burge, Christopher B
Grabowski, Paula J
author_facet Han, Kyoungha
Yeo, Gene
An, Ping
Burge, Christopher B
Grabowski, Paula J
author_sort Han, Kyoungha
collection PubMed
description Alternative pre-mRNA splicing is widely used to regulate gene expression by tuning the levels of tissue-specific mRNA isoforms. Few regulatory mechanisms are understood at the level of combinatorial control despite numerous sequences, distinct from splice sites, that have been shown to play roles in splicing enhancement or silencing. Here we use molecular approaches to identify a ternary combination of exonic UAGG and 5′-splice-site-proximal GGGG motifs that functions cooperatively to silence the brain-region-specific CI cassette exon (exon 19) of the glutamate NMDA R1 receptor (GRIN1) transcript. Disruption of three components of the motif pattern converted the CI cassette into a constitutive exon, while predominant skipping was conferred when the same components were introduced, de novo, into a heterologous constitutive exon. Predominant exon silencing was directed by the motif pattern in the presence of six competing exonic splicing enhancers, and this effect was retained after systematically repositioning the two exonic UAGGs within the CI cassette. In this system, hnRNP A1 was shown to mediate silencing while hnRNP H antagonized silencing. Genome-wide computational analysis combined with RT-PCR testing showed that a class of skipped human and mouse exons can be identified by searches that preserve the sequence and spatial configuration of the UAGG and GGGG motifs. This analysis suggests that the multi-component silencing code may play an important role in the tissue-specific regulation of the CI cassette exon, and that it may serve more generally as a molecular language to allow for intricate adjustments and the coordination of splicing patterns from different genes.
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spelling pubmed-10797832005-04-19 A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs Han, Kyoungha Yeo, Gene An, Ping Burge, Christopher B Grabowski, Paula J PLoS Biol Research Article Alternative pre-mRNA splicing is widely used to regulate gene expression by tuning the levels of tissue-specific mRNA isoforms. Few regulatory mechanisms are understood at the level of combinatorial control despite numerous sequences, distinct from splice sites, that have been shown to play roles in splicing enhancement or silencing. Here we use molecular approaches to identify a ternary combination of exonic UAGG and 5′-splice-site-proximal GGGG motifs that functions cooperatively to silence the brain-region-specific CI cassette exon (exon 19) of the glutamate NMDA R1 receptor (GRIN1) transcript. Disruption of three components of the motif pattern converted the CI cassette into a constitutive exon, while predominant skipping was conferred when the same components were introduced, de novo, into a heterologous constitutive exon. Predominant exon silencing was directed by the motif pattern in the presence of six competing exonic splicing enhancers, and this effect was retained after systematically repositioning the two exonic UAGGs within the CI cassette. In this system, hnRNP A1 was shown to mediate silencing while hnRNP H antagonized silencing. Genome-wide computational analysis combined with RT-PCR testing showed that a class of skipped human and mouse exons can be identified by searches that preserve the sequence and spatial configuration of the UAGG and GGGG motifs. This analysis suggests that the multi-component silencing code may play an important role in the tissue-specific regulation of the CI cassette exon, and that it may serve more generally as a molecular language to allow for intricate adjustments and the coordination of splicing patterns from different genes. Public Library of Science 2005-05 2005-04-19 /pmc/articles/PMC1079783/ /pubmed/15828859 http://dx.doi.org/10.1371/journal.pbio.0030158 Text en Copyright: © 2005 Han et al. 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
Han, Kyoungha
Yeo, Gene
An, Ping
Burge, Christopher B
Grabowski, Paula J
A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs
title A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs
title_full A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs
title_fullStr A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs
title_full_unstemmed A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs
title_short A Combinatorial Code for Splicing Silencing: UAGG and GGGG Motifs
title_sort combinatorial code for splicing silencing: uagg and gggg motifs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1079783/
https://www.ncbi.nlm.nih.gov/pubmed/15828859
http://dx.doi.org/10.1371/journal.pbio.0030158
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