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Genomic basis for RNA alterations in cancer 期刊论文
NATURE, 2020, 578 (7793) : 129-+
作者:  Petitprez, Florent;  39;han
收藏  |  浏览/下载:28/0  |  提交时间:2020/07/03

Transcript alterations often result from somatic changes in cancer genomes(1). Various forms of RNA alterations have been described in cancer, including overexpression(2), altered splicing(3) and gene fusions(4)  however, it is difficult to attribute these to underlying genomic changes owing to heterogeneity among patients and tumour types, and the relatively small cohorts of patients for whom samples have been analysed by both transcriptome and whole-genome sequencing. Here we present, to our knowledge, the most comprehensive catalogue of cancer-associated gene alterations to date, obtained by characterizing tumour transcriptomes from 1,188 donors of the Pan-Cancer Analysis of Whole Genomes (PCAWG) Consortium of the International Cancer Genome Consortium (ICGC) and The Cancer Genome Atlas (TCGA)(5). Using matched whole-genome sequencing data, we associated several categories of RNA alterations with germline and somatic DNA alterations, and identified probable genetic mechanisms. Somatic copy-number alterations were the major drivers of variations in total gene and allele-specific expression. We identified 649 associations of somatic single-nucleotide variants with gene expression in cis, of which 68.4% involved associations with flanking non-coding regions of the gene. We found 1,900 splicing alterations associated with somatic mutations, including the formation of exons within introns in proximity to Alu elements. In addition, 82% of gene fusions were associated with structural variants, including 75 of a new class, termed '  bridged'  fusions, in which a third genomic location bridges two genes. We observed transcriptomic alteration signatures that differ between cancer types and have associations with variations in DNA mutational signatures. This compendium of RNA alterations in the genomic context provides a rich resource for identifying genes and mechanisms that are functionally implicated in cancer.


  
Patterns of somatic structural variation in human cancer genomes 期刊论文
NATURE, 2020, 578 (7793) : 112-+
作者:  Wan, Liling;  Chong, Shasha;  Xuan, Fan;  Liang, Angela;  Cui, Xiaodong;  Gates, Leah;  Carroll, Thomas S.;  Li, Yuanyuan;  Feng, Lijuan;  Chen, Guochao;  Wang, Shu-Ping;  Ortiz, Michael V.;  Daley, Sara K.;  Wang, Xiaolu;  Xuan, Hongwen;  Kentsis, Alex;  Muir, Tom W.;  Roeder, Robert G.;  Li, Haitao;  Li, Wei;  Tjian, Robert;  Wen, Hong;  Allis, C. David
收藏  |  浏览/下载:48/0  |  提交时间:2020/07/03

A key mutational process in cancer is structural variation, in which rearrangements delete, amplify or reorder genomic segments that range in size from kilobases to whole chromosomes(1-7). Here we develop methods to group, classify and describe somatic structural variants, using data from the Pan-Cancer Analysis of Whole Genomes (PCAWG) Consortium of the International Cancer Genome Consortium (ICGC) and The Cancer Genome Atlas (TCGA), which aggregated whole-genome sequencing data from 2,658 cancers across 38 tumour types(8). Sixteen signatures of structural variation emerged. Deletions have a multimodal size distribution, assort unevenly across tumour types and patients, are enriched in late-replicating regions and correlate with inversions. Tandem duplications also have a multimodal size distribution, but are enriched in early-replicating regions-as are unbalanced translocations. Replication-based mechanisms of rearrangement generate varied chromosomal structures with low-level copy-number gains and frequent inverted rearrangements. One prominent structure consists of 2-7 templates copied from distinct regions of the genome strung together within one locus. Such cycles of templated insertions correlate with tandem duplications, and-in liver cancerfrequently activate the telomerase gene TERT. A wide variety of rearrangement processes are active in cancer, which generate complex configurations of the genome upon which selection can act.


  
Patterns of tree diameter distributions in managed and unmanaged Abies alba Mill. and Fagus sylvatica L. forest patches 期刊论文
FOREST ECOLOGY AND MANAGEMENT, 2019, 435: 97-105
作者:  Podlaski, Rafal;  Sobala, Tomasz;  Kocurek, Maciej
收藏  |  浏览/下载:13/0  |  提交时间:2019/04/09
Growing-up developmental stage  Managed stands  Unmanaged forests  Finite mixture models  Gamma distribution  Structural types  
A simple approach to forest structure classification using airborne laser scanning that can be adopted across bioregions 期刊论文
FOREST ECOLOGY AND MANAGEMENT, 2019, 433: 111-121
作者:  Adnan, Syed;  Maltamo, Matti;  Coomes, David A.;  Garcia-Abril, Antonio;  Malhi, Yadvinder;  Antonio Manzanera, Jose;  Butt, Nathalie;  Morecroft, Mike;  Valbuena, Ruben
收藏  |  浏览/下载:19/0  |  提交时间:2019/04/09
Structural heterogeneity  LiDAR  Nearest neighbour imputation  Classification and regression trees  Forest structural types