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A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1

Splicing aberrations are prominent drivers of cancer, yet the regulatory pathways controlling them are mostly unknown. Here we develop a method that integrates physical interaction, gene expression, and alternative splicing data to construct the largest map of transcriptomic and proteomic interactio...

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Autores principales: Hollander, Dror, Donyo, Maya, Atias, Nir, Mekahel, Keren, Melamed, Zeev, Yannai, Sivan, Lev-Maor, Galit, Shilo, Asaf, Schwartz, Schraga, Barshack, Iris, Sharan, Roded, Ast, Gil
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817777/
https://www.ncbi.nlm.nih.gov/pubmed/26860615
http://dx.doi.org/10.1101/gr.193169.115
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author Hollander, Dror
Donyo, Maya
Atias, Nir
Mekahel, Keren
Melamed, Zeev
Yannai, Sivan
Lev-Maor, Galit
Shilo, Asaf
Schwartz, Schraga
Barshack, Iris
Sharan, Roded
Ast, Gil
author_facet Hollander, Dror
Donyo, Maya
Atias, Nir
Mekahel, Keren
Melamed, Zeev
Yannai, Sivan
Lev-Maor, Galit
Shilo, Asaf
Schwartz, Schraga
Barshack, Iris
Sharan, Roded
Ast, Gil
author_sort Hollander, Dror
collection PubMed
description Splicing aberrations are prominent drivers of cancer, yet the regulatory pathways controlling them are mostly unknown. Here we develop a method that integrates physical interaction, gene expression, and alternative splicing data to construct the largest map of transcriptomic and proteomic interactions leading to cancerous splicing aberrations defined to date, and identify driver pathways therein. We apply our method to colon adenocarcinoma and non-small-cell lung carcinoma. By focusing on colon cancer, we reveal a novel tumor-favoring regulatory pathway involving the induction of the transcription factor MYC by the transcription factor ELK1, as well as the subsequent induction of the alternative splicing factor PTBP1 by both. We show that PTBP1 promotes specific RAC1, NUMB, and PKM splicing isoforms that are major triggers of colon tumorigenesis. By testing the pathway's activity in patient tumor samples, we find ELK1, MYC, and PTBP1 to be overexpressed in conjunction with oncogenic KRAS mutations, and show that these mutations increase ELK1 levels via the RAS-MAPK pathway. We thus illuminate, for the first time, a full regulatory pathway connecting prevalent cancerous mutations to functional tumor-inducing splicing aberrations. Our results demonstrate our method is applicable to different cancers to reveal regulatory pathways promoting splicing aberrations.
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spelling pubmed-48177772016-10-01 A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1 Hollander, Dror Donyo, Maya Atias, Nir Mekahel, Keren Melamed, Zeev Yannai, Sivan Lev-Maor, Galit Shilo, Asaf Schwartz, Schraga Barshack, Iris Sharan, Roded Ast, Gil Genome Res Method Splicing aberrations are prominent drivers of cancer, yet the regulatory pathways controlling them are mostly unknown. Here we develop a method that integrates physical interaction, gene expression, and alternative splicing data to construct the largest map of transcriptomic and proteomic interactions leading to cancerous splicing aberrations defined to date, and identify driver pathways therein. We apply our method to colon adenocarcinoma and non-small-cell lung carcinoma. By focusing on colon cancer, we reveal a novel tumor-favoring regulatory pathway involving the induction of the transcription factor MYC by the transcription factor ELK1, as well as the subsequent induction of the alternative splicing factor PTBP1 by both. We show that PTBP1 promotes specific RAC1, NUMB, and PKM splicing isoforms that are major triggers of colon tumorigenesis. By testing the pathway's activity in patient tumor samples, we find ELK1, MYC, and PTBP1 to be overexpressed in conjunction with oncogenic KRAS mutations, and show that these mutations increase ELK1 levels via the RAS-MAPK pathway. We thus illuminate, for the first time, a full regulatory pathway connecting prevalent cancerous mutations to functional tumor-inducing splicing aberrations. Our results demonstrate our method is applicable to different cancers to reveal regulatory pathways promoting splicing aberrations. Cold Spring Harbor Laboratory Press 2016-04 /pmc/articles/PMC4817777/ /pubmed/26860615 http://dx.doi.org/10.1101/gr.193169.115 Text en © 2016 Hollander et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed exclusively by Cold Spring Harbor Laboratory Press for the first six months after the full-issue publication date (see http://genome.cshlp.org/site/misc/terms.xhtml). After six 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/.
spellingShingle Method
Hollander, Dror
Donyo, Maya
Atias, Nir
Mekahel, Keren
Melamed, Zeev
Yannai, Sivan
Lev-Maor, Galit
Shilo, Asaf
Schwartz, Schraga
Barshack, Iris
Sharan, Roded
Ast, Gil
A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1
title A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1
title_full A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1
title_fullStr A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1
title_full_unstemmed A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1
title_short A network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from ELK1
title_sort network-based analysis of colon cancer splicing changes reveals a tumorigenesis-favoring regulatory pathway emanating from elk1
topic Method
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817777/
https://www.ncbi.nlm.nih.gov/pubmed/26860615
http://dx.doi.org/10.1101/gr.193169.115
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