Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns

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Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns. / Weischenfeldt, Joachim Lütken; Waage, Johannes Eichler; Tian, Geng; Zhao, Jing; Damgaard, Inge; Jakobsen, Janus Schou; Kristiansen, Karsten; Krogh, Anders; Wang, Jun; Porse, Bo Torben.

In: Genome Biology (Online Edition), Vol. 13, No. 5, 2012.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Weischenfeldt, JL, Waage, JE, Tian, G, Zhao, J, Damgaard, I, Jakobsen, JS, Kristiansen, K, Krogh, A, Wang, J & Porse, BT 2012, 'Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns', Genome Biology (Online Edition), vol. 13, no. 5. https://doi.org/10.1186/gb-2012-13-5-r35

APA

Weischenfeldt, J. L., Waage, J. E., Tian, G., Zhao, J., Damgaard, I., Jakobsen, J. S., Kristiansen, K., Krogh, A., Wang, J., & Porse, B. T. (2012). Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns. Genome Biology (Online Edition), 13(5). https://doi.org/10.1186/gb-2012-13-5-r35

Vancouver

Weischenfeldt JL, Waage JE, Tian G, Zhao J, Damgaard I, Jakobsen JS et al. Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns. Genome Biology (Online Edition). 2012;13(5). https://doi.org/10.1186/gb-2012-13-5-r35

Author

Weischenfeldt, Joachim Lütken ; Waage, Johannes Eichler ; Tian, Geng ; Zhao, Jing ; Damgaard, Inge ; Jakobsen, Janus Schou ; Kristiansen, Karsten ; Krogh, Anders ; Wang, Jun ; Porse, Bo Torben. / Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns. In: Genome Biology (Online Edition). 2012 ; Vol. 13, No. 5.

Bibtex

@article{24c4b0bf46aa442f843d157de2b19640,
title = "Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns",
abstract = "ABSTRACT: BACKGROUND: Nonsense-mediated mRNA decay (NMD) affects the outcome of alternative splicing by degrading mRNA isoforms with premature termination codons. Splicing regulators constitute important NMD targets; however, the extent to which loss of NMD causes extensive deregulation of alternative splicing has not previously been assayed in a global, unbiased manner. Here, we combine mouse genetics and RNA-seq to provide the first in vivo analysis of the global impact of NMD on splicing patterns in two primary mouse tissues ablated for the NMD factor UPF2. RESULTS: We developed a bioinformatic pipeline that maps RNA-seq data to a combinatorial exon database, predicts NMD-susceptibility for mRNA isoforms and calculates the distribution of major splice isoform classes. We present a catalog of NMD-regulated alternative splicing events, showing that isoforms of 30% of all expressed genes are upregulated in NMD-deficient cells and that NMD targets all major splicing classes. Importantly, NMD-dependent effects are not restricted to premature termination codon+ isoforms but also involve an abundance of splicing events that do not generate premature termination codons. Supporting their functional importance, the latter events are associated with high intronic conservation. CONCLUSIONS: Our data demonstrate that NMD regulates alternative splicing outcomes through an intricate web of splicing regulators and that its loss leads to the deregulation of a panoply of splicing events, providing novel insights into its role in core- and tissue-specific regulation of gene expression. Thus, our study extends the importance of NMD from an mRNA quality pathway to a regulator of several layers of gene expression.",
author = "Weischenfeldt, {Joachim L{\"u}tken} and Waage, {Johannes Eichler} and Geng Tian and Jing Zhao and Inge Damgaard and Jakobsen, {Janus Schou} and Karsten Kristiansen and Anders Krogh and Jun Wang and Porse, {Bo Torben}",
year = "2012",
doi = "10.1186/gb-2012-13-5-r35",
language = "English",
volume = "13",
journal = "Genome Biology (Online Edition)",
issn = "1474-7596",
publisher = "BioMed Central Ltd.",
number = "5",

}

RIS

TY - JOUR

T1 - Mammalian tissues defective in nonsense-mediated mRNA decay display highly aberrant splicing patterns

AU - Weischenfeldt, Joachim Lütken

AU - Waage, Johannes Eichler

AU - Tian, Geng

AU - Zhao, Jing

AU - Damgaard, Inge

AU - Jakobsen, Janus Schou

AU - Kristiansen, Karsten

AU - Krogh, Anders

AU - Wang, Jun

AU - Porse, Bo Torben

PY - 2012

Y1 - 2012

N2 - ABSTRACT: BACKGROUND: Nonsense-mediated mRNA decay (NMD) affects the outcome of alternative splicing by degrading mRNA isoforms with premature termination codons. Splicing regulators constitute important NMD targets; however, the extent to which loss of NMD causes extensive deregulation of alternative splicing has not previously been assayed in a global, unbiased manner. Here, we combine mouse genetics and RNA-seq to provide the first in vivo analysis of the global impact of NMD on splicing patterns in two primary mouse tissues ablated for the NMD factor UPF2. RESULTS: We developed a bioinformatic pipeline that maps RNA-seq data to a combinatorial exon database, predicts NMD-susceptibility for mRNA isoforms and calculates the distribution of major splice isoform classes. We present a catalog of NMD-regulated alternative splicing events, showing that isoforms of 30% of all expressed genes are upregulated in NMD-deficient cells and that NMD targets all major splicing classes. Importantly, NMD-dependent effects are not restricted to premature termination codon+ isoforms but also involve an abundance of splicing events that do not generate premature termination codons. Supporting their functional importance, the latter events are associated with high intronic conservation. CONCLUSIONS: Our data demonstrate that NMD regulates alternative splicing outcomes through an intricate web of splicing regulators and that its loss leads to the deregulation of a panoply of splicing events, providing novel insights into its role in core- and tissue-specific regulation of gene expression. Thus, our study extends the importance of NMD from an mRNA quality pathway to a regulator of several layers of gene expression.

AB - ABSTRACT: BACKGROUND: Nonsense-mediated mRNA decay (NMD) affects the outcome of alternative splicing by degrading mRNA isoforms with premature termination codons. Splicing regulators constitute important NMD targets; however, the extent to which loss of NMD causes extensive deregulation of alternative splicing has not previously been assayed in a global, unbiased manner. Here, we combine mouse genetics and RNA-seq to provide the first in vivo analysis of the global impact of NMD on splicing patterns in two primary mouse tissues ablated for the NMD factor UPF2. RESULTS: We developed a bioinformatic pipeline that maps RNA-seq data to a combinatorial exon database, predicts NMD-susceptibility for mRNA isoforms and calculates the distribution of major splice isoform classes. We present a catalog of NMD-regulated alternative splicing events, showing that isoforms of 30% of all expressed genes are upregulated in NMD-deficient cells and that NMD targets all major splicing classes. Importantly, NMD-dependent effects are not restricted to premature termination codon+ isoforms but also involve an abundance of splicing events that do not generate premature termination codons. Supporting their functional importance, the latter events are associated with high intronic conservation. CONCLUSIONS: Our data demonstrate that NMD regulates alternative splicing outcomes through an intricate web of splicing regulators and that its loss leads to the deregulation of a panoply of splicing events, providing novel insights into its role in core- and tissue-specific regulation of gene expression. Thus, our study extends the importance of NMD from an mRNA quality pathway to a regulator of several layers of gene expression.

U2 - 10.1186/gb-2012-13-5-r35

DO - 10.1186/gb-2012-13-5-r35

M3 - Journal article

C2 - 22624609

VL - 13

JO - Genome Biology (Online Edition)

JF - Genome Biology (Online Edition)

SN - 1474-7596

IS - 5

ER -

ID: 38430821