Cargando…

A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression

The U1 small nuclear ribonucleoprotein (snRNP)-specific U1C protein participates in 5′ splice site recognition and regulation of pre-mRNA splicing. Based on an RNA-Seq analysis in HeLa cells after U1C knockdown, we found a conserved, intra-U1 snRNP cross-regulation that links U1C and U1-70K expressi...

Descripción completa

Detalles Bibliográficos
Autores principales: Rösel-Hillgärtner, Tanja Dorothe, Hung, Lee-Hsueh, Khrameeva, Ekaterina, Le Querrec, Patrick, Gelfand, Mikhail S., Bindereif, Albrecht
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3798272/
https://www.ncbi.nlm.nih.gov/pubmed/24146627
http://dx.doi.org/10.1371/journal.pgen.1003856
_version_ 1782287746937651200
author Rösel-Hillgärtner, Tanja Dorothe
Hung, Lee-Hsueh
Khrameeva, Ekaterina
Le Querrec, Patrick
Gelfand, Mikhail S.
Bindereif, Albrecht
author_facet Rösel-Hillgärtner, Tanja Dorothe
Hung, Lee-Hsueh
Khrameeva, Ekaterina
Le Querrec, Patrick
Gelfand, Mikhail S.
Bindereif, Albrecht
author_sort Rösel-Hillgärtner, Tanja Dorothe
collection PubMed
description The U1 small nuclear ribonucleoprotein (snRNP)-specific U1C protein participates in 5′ splice site recognition and regulation of pre-mRNA splicing. Based on an RNA-Seq analysis in HeLa cells after U1C knockdown, we found a conserved, intra-U1 snRNP cross-regulation that links U1C and U1-70K expression through alternative splicing and U1 snRNP assembly. To investigate the underlying regulatory mechanism, we combined mutational minigene analysis, in vivo splice-site blocking by antisense morpholinos, and in vitro binding experiments. Alternative splicing of U1-70K pre-mRNA creates the normal (exons 7–8) and a non-productive mRNA isoform, whose balance is determined by U1C protein levels. The non-productive isoform is generated through a U1C-dependent alternative 3′ splice site, which requires an adjacent cluster of regulatory 5′ splice sites and binding of intact U1 snRNPs. As a result of nonsense-mediated decay (NMD) of the non-productive isoform, U1-70K mRNA and protein levels are down-regulated, and U1C incorporation into the U1 snRNP is impaired. U1-70K/U1C-deficient particles are assembled, shifting the alternative splicing balance back towards productive U1-70K splicing, and restoring assembly of intact U1 snRNPs. Taken together, we established a novel feedback regulation that controls U1-70K/U1C homeostasis and ensures correct U1 snRNP assembly and function.
format Online
Article
Text
id pubmed-3798272
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-37982722013-10-21 A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression Rösel-Hillgärtner, Tanja Dorothe Hung, Lee-Hsueh Khrameeva, Ekaterina Le Querrec, Patrick Gelfand, Mikhail S. Bindereif, Albrecht PLoS Genet Research Article The U1 small nuclear ribonucleoprotein (snRNP)-specific U1C protein participates in 5′ splice site recognition and regulation of pre-mRNA splicing. Based on an RNA-Seq analysis in HeLa cells after U1C knockdown, we found a conserved, intra-U1 snRNP cross-regulation that links U1C and U1-70K expression through alternative splicing and U1 snRNP assembly. To investigate the underlying regulatory mechanism, we combined mutational minigene analysis, in vivo splice-site blocking by antisense morpholinos, and in vitro binding experiments. Alternative splicing of U1-70K pre-mRNA creates the normal (exons 7–8) and a non-productive mRNA isoform, whose balance is determined by U1C protein levels. The non-productive isoform is generated through a U1C-dependent alternative 3′ splice site, which requires an adjacent cluster of regulatory 5′ splice sites and binding of intact U1 snRNPs. As a result of nonsense-mediated decay (NMD) of the non-productive isoform, U1-70K mRNA and protein levels are down-regulated, and U1C incorporation into the U1 snRNP is impaired. U1-70K/U1C-deficient particles are assembled, shifting the alternative splicing balance back towards productive U1-70K splicing, and restoring assembly of intact U1 snRNPs. Taken together, we established a novel feedback regulation that controls U1-70K/U1C homeostasis and ensures correct U1 snRNP assembly and function. Public Library of Science 2013-10-17 /pmc/articles/PMC3798272/ /pubmed/24146627 http://dx.doi.org/10.1371/journal.pgen.1003856 Text en © 2013 Rösel-Hillgärtner 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
Rösel-Hillgärtner, Tanja Dorothe
Hung, Lee-Hsueh
Khrameeva, Ekaterina
Le Querrec, Patrick
Gelfand, Mikhail S.
Bindereif, Albrecht
A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression
title A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression
title_full A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression
title_fullStr A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression
title_full_unstemmed A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression
title_short A Novel Intra-U1 snRNP Cross-Regulation Mechanism: Alternative Splicing Switch Links U1C and U1-70K Expression
title_sort novel intra-u1 snrnp cross-regulation mechanism: alternative splicing switch links u1c and u1-70k expression
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3798272/
https://www.ncbi.nlm.nih.gov/pubmed/24146627
http://dx.doi.org/10.1371/journal.pgen.1003856
work_keys_str_mv AT roselhillgartnertanjadorothe anovelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT hungleehsueh anovelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT khrameevaekaterina anovelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT lequerrecpatrick anovelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT gelfandmikhails anovelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT bindereifalbrecht anovelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT roselhillgartnertanjadorothe novelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT hungleehsueh novelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT khrameevaekaterina novelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT lequerrecpatrick novelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT gelfandmikhails novelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression
AT bindereifalbrecht novelintrau1snrnpcrossregulationmechanismalternativesplicingswitchlinksu1candu170kexpression