Logo
Nazad
Esther Rheinbay, M. Nielsen, F. Abascal, J. Wala, Ofer Shapira, G. Tiao, H. Hornshøj, J. Hess, R. Juul, Ziao Lin, L. Feuerbach, R. Sabarinathan, Tobias Madsen, Jaegil Kim, L. Mularoni, S. Shuai, Andrés Lanzós, C. Herrmann, Y. Maruvka, Ciyue Shen, S. Amin, P. Bandopadhayay, Johanna Bertl, Keith A. Boroevich, John P. Busanovich, Joana Carlevaro-Fita, D. Chakravarty, Calvin Wing Yiu Chan, D. Craft, P. Dhingra, K. Diamanti, Nuno A. Fonseca, A. González-Pérez, Qianyun Guo, M. P. Hamilton, N. Haradhvala, Chen Hong, Keren Isaev, Todd A. Johnson, Malene Juul, A. Kahles, A. Kahraman, Youngwook Kim, J. Komorowski, K. Kumar, Sushant Kumar, Donghoon Lee, K. Lehmann, Yilong Li, E. M. Liu, L. Lochovsky, Keunchil Park, O. Pich, Nicola D. Roberts, G. Saksena, S. Schumacher, N. Sidiropoulos, L. Sieverling, Nasa Sinnott-Armstrong, C. Stewart, D. Tamborero, J. Tubío, Husen M. Umer, Liis Uusküla-Reimand, C. Wadelius, Lina Wadi, Xiaotong Yao, Cheng-Zhong Zhang, Jing Zhang, J. Haber, A. Hobolth, M. Imieliński, Manolis Kellis, M. Lawrence, C. von Mering, H. Nakagawa, Benjamin J. Raphael, M. Rubin, C. Sander, Lincoln D. Stein, Joshua M. Stuart, T. Tsunoda, D. Wheeler, Rory Johnson, J. Reimand, M. Gerstein, Ekta Khurana, P. Campbell, N. López-Bigas, Federico Samirkumar B. Gary D. Pratiti Jonathan Rameen Joha Abascal Amin Bader Bandopadhayay Barenboim Beroukh, Gary D Bader, J. Barenboim, R. Beroukhim, S. Brunak, Ken Chen, J. Choi, J. Deu-Pons, J. Fink, J. Frigola, C. Gambacorti-Passerini, D. W. Garsed, G. Getz, I. Gut, D. Haan, A. Harmanci, M. Helmy, Ermin Hodzic, J. Izarzugaza, J. K. Kim, J. Korbel, E. Larsson, Shantao Li, Xiaotong Li, S. Lou, K. Marchal, I. Martincorena, A. Martínez-Fundichely, Patrick D. McGillivray, W. Meyerson, Ferran Muiños, M. Paczkowska, Kiejung Park, J. S. Pedersen, T. Pons, Sergio Pulido-Tamayo, I. Reyes-Salazar, M. Reyna, C. Rubio-Perez, S. C. Sahinalp, L. Salichos, M. Shackleton, Raunak Shrestha, A. Valencia, M. Vázquez, L. Verbeke, Jiayin Wang, J. Warrell, Sebastian M. Waszak, Joachim Weischenfeldt, Guanming Wu, Jun Yu, Xuanping Zhang, Yan Zhang, Zhongming Zhao, L. Zou, Kadir C. Eva G. Adrian Rameen Paul C. David D. L. Benedi Akdemir Alvarez Baez-Ortega Beroukhim Boutros Bowt, K. Akdemir, Eva G. Álvarez, Adrian Baez-Ortega, P. Boutros, D. Bowtell, B. Brors, K. Burns, Kin Chan, I. Cortés-Ciriano, Ana Dueso-Barroso, Andrew J. Dunford, P. Edwards, X. Estivill, D. Etemadmoghadam, M. Frenkel-Morgenstern, D. Gordenin, B. Hutter, David T. W. Jones, Y. Ju, M. Kazanov, L. Klimczak, Y. Koh, E. Lee, J. Lee, A. Lynch, G. Macintyre, F. Markowetz, M. Meyerson, S. Miyano, Fábio C. P. Navarro, S. Ossowski, P. Park, J. Pearson, Montserrat Puiggrós, K. Rippe, S. Roberts, Bernardo Rodriguez-Martin, R. Scully, D. Torrents, I. Villasante, N. Waddell, Lixing Yang, S. Yoon, Jorge Zamora, Joachim Weischenfeldt, R. Beroukhim, I. Martincorena, J. S. Pedersen, G. Getz
472 1. 2. 2020.

Analyses of non-coding somatic drivers in 2,658 cancer whole genomes

The discovery of drivers of cancer has traditionally focused on protein-coding genes1–4. Here we present analyses of driver point mutations and structural variants in non-coding regions across 2,658 genomes from the Pan-Cancer Analysis of Whole Genomes (PCAWG) Consortium5 of the International Cancer Genome Consortium (ICGC) and The Cancer Genome Atlas (TCGA). For point mutations, we developed a statistically rigorous strategy for combining significance levels from multiple methods of driver discovery that overcomes the limitations of individual methods. For structural variants, we present two methods of driver discovery, and identify regions that are significantly affected by recurrent breakpoints and recurrent somatic juxtapositions. Our analyses confirm previously reported drivers6,7, raise doubts about others and identify novel candidates, including point mutations in the 5′ region of TP53, in the 3′ untranslated regions of NFKBIZ and TOB1, focal deletions in BRD4 and rearrangements in the loci of AKR1C genes. We show that although point mutations and structural variants that drive cancer are less frequent in non-coding genes and regulatory sequences than in protein-coding genes, additional examples of these drivers will be found as more cancer genomes become available. Analyses of 2,658 whole genomes across 38 types of cancer identify the contribution of non-coding point mutations and structural variants to driving cancer.


Pretplatite se na novosti o BH Akademskom Imeniku

Ova stranica koristi kolačiće da bi vam pružila najbolje iskustvo

Saznaj više