Pan-cancer analysis of whole genomes

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机构
[1] Applied Tumor Genomics Research Program,Genome Science Division, Research Center for Advanced Science and Technology
[2] Research Programs Unit,Department of Surgery
[3] University of Helsinki,Department of Surgery, Division of Hepatobiliary and Pancreatic Surgery, School of Medicine
[4] Wellcome Sanger Institute,Department of Oncology, Gil Medical Center
[5] Wellcome Genome Campus,Department of Bioinformatics and Computational Biology
[6] Memorial Sloan Kettering Cancer Center,Bioinformatics Core Facility
[7] University of Tokyo,Heinrich Pette Institute
[8] University of Chicago,Ontario Tumour Bank
[9] Keimyung University Dongsan Medical Center,Department of Pathology
[10] Gachon University,Laboratory of Pathology, Center for Cancer Research
[11] Hiroshima University,Department of Cellular and Molecular Medicine and Department of Bioengineering
[12] The University of Texas MD Anderson Cancer Center,Sir Peter MacCallum Department of Oncology, Peter MacCallum Cancer Centre
[13] University of Texas MD Anderson Cancer Center,Centre for Research in Molecular Medicine and Chronic Diseases (CiMUS)
[14] King Faisal Specialist Hospital and Research Centre,Department of Zoology, Genetics and Physical Anthropology
[15] Al Maather,The Biomedical Research Centre (CINBIO)
[16] Bioinformatics Unit,Department of Genomic Medicine
[17] Spanish National Cancer Research Centre (CNIO),Quantitative and Computational Biosciences Graduate Program
[18] University Medical Center Hamburg,Genome Informatics Program
[19] Leibniz Institute for Experimental Virology,Institute of Human Genetics
[20] Ontario Institute for Cancer Research,Institute of Human Genetics
[21] The University of Texas MD Anderson Cancer Center,Queensland Centre for Medical Genomics, Institute for Molecular Bioscience
[22] National Cancer Institute,Department of Surgery, Pancreas Institute
[23] University of California San Diego,Molecular and Medical Genetics, OHSU Knight Cancer Institute
[24] UC San Diego Moores Cancer Center,Department of Molecular Oncology
[25] Canada’s Michael Smith Genome Sciences Centre,Division of Cancer Genomics
[26] BC Cancer,Center for Molecular Oncology
[27] University of Melbourne,Department of Pathology
[28] Universidade de Santiago de Compostela,Epigenomics and Cancer Risk Factors
[29] (CiMUS),Computational Biology Program
[30] Universidade de Santiago de Compostela,Department of Molecular Genetics
[31] Universidade de Vigo,Hematopathology Section, Institute of Pathology
[32] Royal National Orthopaedic Hospital - Bolsover,Department of Pathology and Laboratory Medicine, School of Medicine
[33] The University of Texas MD Anderson Cancer Center,Department of Cancer Genetics, Institute for Cancer Research
[34] Baylor College of Medicine,Pathology, Hospital Clinic, Institut d’Investigacions Biomèdiques August Pi i Sunyer (IDIBAPS)
[35] The Jackson Laboratory for Genomic Medicine,Department of Veterinary Medicine
[36] Ontario Institute for Cancer Research,Alvin J. Siteman Cancer Center
[37] Christian-Albrechts-University,Wolfson Wohl Cancer Research Centre, Institute of Cancer Sciences
[38] Ulm University and Ulm University Medical Center,Lineberger Comprehensive Cancer Center
[39] University of Queensland,Department of Pediatrics
[40] St. Lucia,Leeds Institute of Medical Research @ St. James’s
[41] Salford Royal NHS Foundation Trust,Department of Pathology and Diagnostics
[42] University and Hospital Trust of Verona,Department of Surgery
[43] Oregon Health and Science University,Surgical Oncology Group, Diamantina Institute
[44] BC Cancer Research Centre,Department of Population and Quantitative Health Sciences
[45] The McDonnell Genome Institute at Washington University,Research Health Analytics and Informatics
[46] University College London,European Molecular Biology Laboratory
[47] National Cancer Center Research Institute,Arnie Charbonneau Cancer Institute
[48] National Cancer Center,Departments of Surgery and Oncology
[49] DLR Project Management Agency,Department of Pathology
[50] Tokyo Women’s Medical University,PanCuRx Translational Research Initiative
来源
Nature | 2020年 / 578卷
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摘要
Cancer is driven by genetic change, and the advent of massively parallel sequencing has enabled systematic documentation of this variation at the whole-genome scale1–3. Here we report the integrative analysis of 2,658 whole-cancer genomes and their matching normal tissues across 38 tumour types from the Pan-Cancer Analysis of Whole Genomes (PCAWG) Consortium of the International Cancer Genome Consortium (ICGC) and The Cancer Genome Atlas (TCGA). We describe the generation of the PCAWG resource, facilitated by international data sharing using compute clouds. On average, cancer genomes contained 4–5 driver mutations when combining coding and non-coding genomic elements; however, in around 5% of cases no drivers were identified, suggesting that cancer driver discovery is not yet complete. Chromothripsis, in which many clustered structural variants arise in a single catastrophic event, is frequently an early event in tumour evolution; in acral melanoma, for example, these events precede most somatic point mutations and affect several cancer-associated genes simultaneously. Cancers with abnormal telomere maintenance often originate from tissues with low replicative activity and show several mechanisms of preventing telomere attrition to critical levels. Common and rare germline variants affect patterns of somatic mutation, including point mutations, structural variants and somatic retrotransposition. A collection of papers from the PCAWG Consortium describes non-coding mutations that drive cancer beyond those in the TERT promoter4; identifies new signatures of mutational processes that cause base substitutions, small insertions and deletions and structural variation5,6; analyses timings and patterns of tumour evolution7; describes the diverse transcriptional consequences of somatic mutation on splicing, expression levels, fusion genes and promoter activity8,9; and evaluates a range of more-specialized features of cancer genomes8,10–18.
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页码:82 / 93
页数:11
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  • [1] Pan-cancer analysis of whole genomes
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    Fattahi, Faranak
    Klein, Ophir D.
    Fletcher, Daniel A.
    Lim, Wendell A.
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  • [4] Results of the CGC/TCGA Pan-Cancer Analysis of the Whole Genomes (PCAWG) Consortium
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    Van Loo, Peter
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    [J]. NATURE GENETICS, 2020, 52 (03) : 306 - +
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