Punctuated evolution of prostate cancer genomes.

Journal: Cell
Published:
Abstract

The analysis of exonic DNA from prostate cancers has identified recurrently mutated genes, but the spectrum of genome-wide alterations has not been profiled extensively in this disease. We sequenced the genomes of 57 prostate tumors and matched normal tissues to characterize somatic alterations and to study how they accumulate during oncogenesis and progression. By modeling the genesis of genomic rearrangements, we identified abundant DNA translocations and deletions that arise in a highly interdependent manner. This phenomenon, which we term "chromoplexy," frequently accounts for the dysregulation of prostate cancer genes and appears to disrupt multiple cancer genes coordinately. Our modeling suggests that chromoplexy may induce considerable genomic derangement over relatively few events in prostate cancer and other neoplasms, supporting a model of punctuated cancer evolution. By characterizing the clonal hierarchy of genomic lesions in prostate tumors, we charted a path of oncogenic events along which chromoplexy may drive prostate carcinogenesis.

Authors
Sylvan Baca, Davide Prandi, Michael Lawrence, Juan Mosquera, Alessandro Romanel, Yotam Drier, Kyung Park, Naoki Kitabayashi, Theresa Macdonald, Mahmoud Ghandi, Eliezer Van Allen, Gregory Kryukov, Andrea Sboner, Jean-philippe Theurillat, T Soong, Elizabeth Nickerson, Daniel Auclair, Ashutosh Tewari, Himisha Beltran, Robert Onofrio, Gunther Boysen, Candace Guiducci, Christopher Barbieri, Kristian Cibulskis, Andrey Sivachenko, Scott Carter, Gordon Saksena, Douglas Voet, Alex Ramos, Wendy Winckler, Michelle Cipicchio, Kristin Ardlie, Philip Kantoff, Michael Berger, Stacey Gabriel, Todd Golub, Matthew Meyerson, Eric Lander, Olivier Elemento, Gad Getz, Francesca Demichelis, Mark Rubin, Levi Garraway