The elusive evidence for chromothripsis

被引:30
作者
Kinsella, Marcus [1 ]
Patel, Anand [2 ]
Bafna, Vineet [2 ]
机构
[1] Univ Calif San Diego, Bioinformat & Syst Biol Program, San Diego, CA 92103 USA
[2] Univ Calif San Diego, Dept Comp Sci & Engn, San Diego, CA 92103 USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
COMPLEX GENOMIC REARRANGEMENTS; STRUCTURAL VARIATION; CANCER GENOMES; MULTIPLE-MYELOMA; ALGORITHMS; MECHANISMS; REVERSALS; BREAKAGE; GERMLINE;
D O I
10.1093/nar/gku525
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The chromothripsis hypothesis suggests an extraordinary one-step catastrophic genomic event allowing a chromosome to 'shatter into many pieces' and reassemble into a functioning chromosome. Recent efforts have aimed to detect chromothripsis by looking for a genomic signature, characterized by a large number of breakpoints (50-250), but a limited number of oscillating copy number states (2-3) confined to a few chromosomes. The chromothripsis phenomenon has become widely reported in different cancers, but using inconsistent and sometimes relaxed criteria for determining rearrangements occur simultaneously rather than progressively. We revisit the original simulation approach and show that the signature is not clearly exceptional, and can be explained using only progressive rearrangements. For example, 3.9% of progressively simulated chromosomes with 50-55 breakpoints were dominated by two or three copy number states. In addition, by adjusting the parameters of the simulation, the proposed footprint appears more frequently. Lastly, we provide an algorithm to find a sequence of progressive rearrangements that explains all observed breakpoints from a proposed chromothripsis chromosome. Thus, the proposed signature cannot be considered a sufficient proof for this extraordinary hypothesis. Great caution should be exercised when labeling complex rearrangements as chromothripsis from genome hybridization and sequencing experiments.
引用
收藏
页码:8231 / 8242
页数:12
相关论文
共 26 条
[1]   Multi-break rearrangements and chromosomal evolution [J].
Alekseyev, Max A. ;
Pevzner, Pavel A. .
THEORETICAL COMPUTER SCIENCE, 2008, 395 (2-3) :193-202
[2]   Are there rearrangement hotspots in the human genome? [J].
Alekseyev, Max A. ;
Pevzner, Pavel A. .
PLOS COMPUTATIONAL BIOLOGY, 2007, 3 (11) :2111-2121
[3]   Genome rearrangements and sorting by reversals [J].
Bafna, V ;
Pevzner, PA .
SIAM JOURNAL ON COMPUTING, 1996, 25 (02) :272-289
[4]   Sorting by transpositions [J].
Bafna, V ;
Pevzner, PA .
SIAM JOURNAL ON DISCRETE MATHEMATICS, 1998, 11 (02) :224-240
[5]   Complex reorganization and predominant non-homologous repair following chromosomal breakage in karyotypically balanced germline rearrangements and transgenic integration [J].
Chiang, Colby ;
Jacobsen, Jessie C. ;
Ernst, Carl ;
Hanscom, Carrie ;
Heilbut, Adrian ;
Blumenthal, Ian ;
Mills, Ryan E. ;
Kirby, Andrew ;
Lindgren, Amelia M. ;
Rudiger, Skye R. ;
McLaughlan, Clive J. ;
Bawden, C. Simon ;
Reid, Suzanne J. ;
Faull, Richard L. M. ;
Snell, Russell G. ;
Hall, Ira M. ;
Shen, Yiping ;
Ohsumi, Toshiro K. ;
Borowsky, Mark L. ;
Daly, Mark J. ;
Lee, Charles ;
Morton, Cynthia C. ;
MacDonald, Marcy E. ;
Gusella, James F. ;
Talkowski, Michael E. .
NATURE GENETICS, 2012, 44 (04) :390-U195
[6]   PICNIC: an algorithm to predict absolute allelic copy number variation with microarray cancer data [J].
Greenman, Chris D. ;
Bignell, Graham ;
Butler, Adam ;
Edkins, Sarah ;
Hinton, Jon ;
Beare, Dave ;
Swamy, Sajani ;
Santarius, Thomas ;
Chen, Lina ;
Widaa, Sara ;
Futreal, P. Andy ;
Stratton, Michael R. .
BIOSTATISTICS, 2010, 11 (01) :164-175
[7]  
Hannenhalli S., 1995, J ACM, P178
[8]   EXACT AND APPROXIMATION ALGORITHMS FOR SORTING BY REVERSALS, WITH APPLICATION TO GENOME REARRANGEMENT [J].
KECECIOGLU, J ;
SANKOFF, D .
ALGORITHMICA, 1995, 13 (1-2) :180-210
[9]   Chromothripsis is a common mechanism driving genomic rearrangements in primary and metastatic colorectal cancer [J].
Kloosterman, Wigard P. ;
Hoogstraat, Marlous ;
Paling, Oscar ;
Tavakoli-Yaraki, Masoumeh ;
Renkens, Ivo ;
Vermaat, Joost S. ;
van Roosmalen, Markus J. ;
van Lieshout, Stef ;
Nijman, Isaac J. ;
Roessingh, Wijnand ;
van 't Slot, Ruben ;
van de Belt, Jose ;
Guryev, Victor ;
Koudijs, Marco ;
Voest, Emile ;
Cuppen, Edwin .
GENOME BIOLOGY, 2011, 12 (10) :R103
[10]   Chromothripsis as a mechanism driving complex de novo structural rearrangements in the germline [J].
Kloosterman, Wigard P. ;
Guryev, Victor ;
van Roosmalen, Mark ;
Duran, Karen J. ;
de Bruijn, Ewart ;
Bakker, Saskia C. M. ;
Letteboer, Tom ;
van Nesselrooij, Bernadette ;
Hochstenbach, Ron ;
Poot, Martin ;
Cuppen, Edwin .
HUMAN MOLECULAR GENETICS, 2011, 20 (10) :1916-1924