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024 7 _ |a 10.1038/s41467-020-14367-0
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037 _ _ |a DKFZ-2021-02571
041 _ _ |a English
082 _ _ |a 500
100 1 _ |a Reyna, Matthew A
|b 0
245 _ _ |a Pathway and network analysis of more than 2500 whole cancer genomes.
260 _ _ |a [London]
|c 2020
|b Nature Publishing Group UK
336 7 _ |a article
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500 _ _ |a siehe Correction: DKFZ Autoren affiliiert im PCAWG Consortium: https://inrepo02.dkfz.de/record/212441 / https://doi.org/10.1038/s41467-022-32334-9
520 _ _ |a The catalog of cancer driver mutations in protein-coding genes has greatly expanded in the past decade. However, non-coding cancer driver mutations are less well-characterized and only a handful of recurrent non-coding mutations, most notably TERT promoter mutations, have been reported. Here, as part of the ICGC/TCGA Pan-Cancer Analysis of Whole Genomes (PCAWG) Consortium, which aggregated whole genome sequencing data from 2658 cancer across 38 tumor types, we perform multi-faceted pathway and network analyses of non-coding mutations across 2583 whole cancer genomes from 27 tumor types compiled by the ICGC/TCGA PCAWG project that was motivated by the success of pathway and network analyses in prioritizing rare mutations in protein-coding genes. While few non-coding genomic elements are recurrently mutated in this cohort, we identify 93 genes harboring non-coding mutations that cluster into several modules of interacting proteins. Among these are promoter mutations associated with reduced mRNA expression in TP53, TLE4, and TCF4. We find that biological processes had variable proportions of coding and non-coding mutations, with chromatin remodeling and proliferation pathways altered primarily by coding mutations, while developmental pathways, including Wnt and Notch, altered by both coding and non-coding mutations. RNA splicing is primarily altered by non-coding mutations in this cohort, and samples containing non-coding mutations in well-known RNA splicing factors exhibit similar gene expression signatures as samples with coding mutations in these genes. These analyses contribute a new repertoire of possible cancer genes and mechanisms that are altered by non-coding mutations and offer insights into additional cancer vulnerabilities that can be investigated for potential therapeutic treatments.
536 _ _ |a 312 - Functional and structural genomics (POF3-312)
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650 _ 2 |a Chromatin Assembly and Disassembly
|2 MeSH
650 _ 2 |a Computational Biology: methods
|2 MeSH
650 _ 2 |a Databases, Genetic
|2 MeSH
650 _ 2 |a Gene Expression Regulation, Neoplastic
|2 MeSH
650 _ 2 |a Genome, Human
|2 MeSH
650 _ 2 |a Humans
|2 MeSH
650 _ 2 |a Metabolic Networks and Pathways: genetics
|2 MeSH
650 _ 2 |a Mutation
|2 MeSH
650 _ 2 |a Neoplasms: genetics
|2 MeSH
650 _ 2 |a Neoplasms: metabolism
|2 MeSH
650 _ 2 |a Promoter Regions, Genetic
|2 MeSH
650 _ 2 |a RNA Splicing
|2 MeSH
700 1 _ |a Haan, David
|b 1
700 1 _ |a Paczkowska, Marta
|b 2
700 1 _ |a Verbeke, Lieven P C
|b 3
700 1 _ |a Vazquez, Miguel
|b 4
700 1 _ |a Kahraman, Abdullah
|b 5
700 1 _ |a Pulido-Tamayo, Sergio
|b 6
700 1 _ |a Barenboim, Jonathan
|b 7
700 1 _ |a Wadi, Lina
|b 8
700 1 _ |a Dhingra, Priyanka
|b 9
700 1 _ |a Shrestha, Raunak
|b 10
700 1 _ |a Getz, Gad
|b 11
700 1 _ |a Lawrence, Michael S
|b 12
700 1 _ |a Pedersen, Jakob Skou
|b 13
700 1 _ |a Rubin, Mark A
|b 14
700 1 _ |a Wheeler, David A
|b 15
700 1 _ |a Brunak, Søren
|b 16
700 1 _ |a Izarzugaza, Jose M G
|b 17
700 1 _ |a Khurana, Ekta
|b 18
700 1 _ |a Marchal, Kathleen
|b 19
700 1 _ |a von Mering, Christian
|b 20
700 1 _ |a Sahinalp, S Cenk
|b 21
700 1 _ |a Valencia, Alfonso
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700 1 _ |a Drivers, PCAWG
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700 1 _ |a Reimand, Jüri
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700 1 _ |a Stuart, Joshua M
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700 1 _ |a Raphael, Benjamin J
|b 27
700 1 _ |a PCAWGConsortium
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773 _ _ |a 10.1038/s41467-020-14367-0
|g Vol. 11, no. 1, p. 729
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|t Nature Communications
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|y 2020
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