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Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia

Changes in gene dosage are a major driver of cancer, engineered from a finite, but increasingly well annotated, repertoire of mutational mechanisms(1). This can potentially generate correlated copy number alterations across hundreds of linked genes, as exemplified by the 2% of childhood acute lympho...

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Autores principales: Li, Yilong, Schwab, Claire, Ryan, Sarra, Papaemmanuil, Elli, Robinson, Hazel M., Jacobs, Patricia, Moorman, Anthony V., Dyer, Sara, Borrow, Julian, Griffiths, Mike, Heerema, Nyla A., Carroll, Andrew J., Talley, Polly, Bown, Nick, Telford, Nick, Ross, Fiona M., Gaunt, Lorraine, McNally, Richard J. Q., Young, Bryan D., Sinclair, Paul, Rand, Vikki, Teixeira, Manuel R., Joseph, Olivia, Robinson, Ben, Maddison, Mark, Dastugue, Nicole, Vandenberghe, Peter, Stephens, Philip J., Cheng, Jiqiu, Van Loo, Peter, Stratton, Michael R., Campbell, Peter J., Harrison, Christine J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3976272/
https://www.ncbi.nlm.nih.gov/pubmed/24670643
http://dx.doi.org/10.1038/nature13115
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author Li, Yilong
Schwab, Claire
Ryan, Sarra
Papaemmanuil, Elli
Robinson, Hazel M.
Jacobs, Patricia
Moorman, Anthony V.
Dyer, Sara
Borrow, Julian
Griffiths, Mike
Heerema, Nyla A.
Carroll, Andrew J.
Talley, Polly
Bown, Nick
Telford, Nick
Ross, Fiona M.
Gaunt, Lorraine
McNally, Richard J. Q.
Young, Bryan D.
Sinclair, Paul
Rand, Vikki
Teixeira, Manuel R.
Joseph, Olivia
Robinson, Ben
Maddison, Mark
Dastugue, Nicole
Vandenberghe, Peter
Stephens, Philip J.
Cheng, Jiqiu
Van Loo, Peter
Stratton, Michael R.
Campbell, Peter J.
Harrison, Christine J.
author_facet Li, Yilong
Schwab, Claire
Ryan, Sarra
Papaemmanuil, Elli
Robinson, Hazel M.
Jacobs, Patricia
Moorman, Anthony V.
Dyer, Sara
Borrow, Julian
Griffiths, Mike
Heerema, Nyla A.
Carroll, Andrew J.
Talley, Polly
Bown, Nick
Telford, Nick
Ross, Fiona M.
Gaunt, Lorraine
McNally, Richard J. Q.
Young, Bryan D.
Sinclair, Paul
Rand, Vikki
Teixeira, Manuel R.
Joseph, Olivia
Robinson, Ben
Maddison, Mark
Dastugue, Nicole
Vandenberghe, Peter
Stephens, Philip J.
Cheng, Jiqiu
Van Loo, Peter
Stratton, Michael R.
Campbell, Peter J.
Harrison, Christine J.
author_sort Li, Yilong
collection PubMed
description Changes in gene dosage are a major driver of cancer, engineered from a finite, but increasingly well annotated, repertoire of mutational mechanisms(1). This can potentially generate correlated copy number alterations across hundreds of linked genes, as exemplified by the 2% of childhood acute lymphoblastic leukemia (ALL) with recurrent amplification of megabase regions of chromosome 21 (iAMP21)(2,3). We used genomic, cytogenetic and transcriptional analysis, coupled with novel bioinformatic approaches, to reconstruct the evolution of iAMP21 ALL. We find that individuals born with the rare constitutional Robertsonian translocation between chromosomes 15 and 21, rob(15;21)(q10;q10)c, have ~2700-fold increased risk of developing iAMP21 ALL compared to the general population. In such cases, amplification is initiated by a chromothripsis event involving both sister chromatids of the Robertsonian chromosome, a novel mechanism for cancer predisposition. In sporadic iAMP21, breakage-fusion-bridge cycles are typically the initiating event, often followed by chromothripsis. In both sporadic and rob(15;21)c-associated iAMP21, the final stages frequently involve duplications of the entire abnormal chromosome. The end-product is a derivative of chromosome 21 or the rob(15;21)c chromosome with gene dosage optimised for leukemic potential, showing constrained copy number levels over multiple linked genes. Thus, dicentric chromosomes may be an important precipitant of chromothripsis, as we show rob(15;21)c to be constitutionally dicentric and breakage-fusion-bridge cycles generate dicentric chromosomes somatically. Furthermore, our data illustrate that several cancer-specific mutational processes, applied sequentially, can co-ordinate to fashion copy number profiles over large genomic scales, incrementally refining the fitness benefits of aggregated gene dosage changes.
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spelling pubmed-39762722014-10-03 Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia Li, Yilong Schwab, Claire Ryan, Sarra Papaemmanuil, Elli Robinson, Hazel M. Jacobs, Patricia Moorman, Anthony V. Dyer, Sara Borrow, Julian Griffiths, Mike Heerema, Nyla A. Carroll, Andrew J. Talley, Polly Bown, Nick Telford, Nick Ross, Fiona M. Gaunt, Lorraine McNally, Richard J. Q. Young, Bryan D. Sinclair, Paul Rand, Vikki Teixeira, Manuel R. Joseph, Olivia Robinson, Ben Maddison, Mark Dastugue, Nicole Vandenberghe, Peter Stephens, Philip J. Cheng, Jiqiu Van Loo, Peter Stratton, Michael R. Campbell, Peter J. Harrison, Christine J. Nature Article Changes in gene dosage are a major driver of cancer, engineered from a finite, but increasingly well annotated, repertoire of mutational mechanisms(1). This can potentially generate correlated copy number alterations across hundreds of linked genes, as exemplified by the 2% of childhood acute lymphoblastic leukemia (ALL) with recurrent amplification of megabase regions of chromosome 21 (iAMP21)(2,3). We used genomic, cytogenetic and transcriptional analysis, coupled with novel bioinformatic approaches, to reconstruct the evolution of iAMP21 ALL. We find that individuals born with the rare constitutional Robertsonian translocation between chromosomes 15 and 21, rob(15;21)(q10;q10)c, have ~2700-fold increased risk of developing iAMP21 ALL compared to the general population. In such cases, amplification is initiated by a chromothripsis event involving both sister chromatids of the Robertsonian chromosome, a novel mechanism for cancer predisposition. In sporadic iAMP21, breakage-fusion-bridge cycles are typically the initiating event, often followed by chromothripsis. In both sporadic and rob(15;21)c-associated iAMP21, the final stages frequently involve duplications of the entire abnormal chromosome. The end-product is a derivative of chromosome 21 or the rob(15;21)c chromosome with gene dosage optimised for leukemic potential, showing constrained copy number levels over multiple linked genes. Thus, dicentric chromosomes may be an important precipitant of chromothripsis, as we show rob(15;21)c to be constitutionally dicentric and breakage-fusion-bridge cycles generate dicentric chromosomes somatically. Furthermore, our data illustrate that several cancer-specific mutational processes, applied sequentially, can co-ordinate to fashion copy number profiles over large genomic scales, incrementally refining the fitness benefits of aggregated gene dosage changes. 2014-03-23 2014-04-03 /pmc/articles/PMC3976272/ /pubmed/24670643 http://dx.doi.org/10.1038/nature13115 Text en
spellingShingle Article
Li, Yilong
Schwab, Claire
Ryan, Sarra
Papaemmanuil, Elli
Robinson, Hazel M.
Jacobs, Patricia
Moorman, Anthony V.
Dyer, Sara
Borrow, Julian
Griffiths, Mike
Heerema, Nyla A.
Carroll, Andrew J.
Talley, Polly
Bown, Nick
Telford, Nick
Ross, Fiona M.
Gaunt, Lorraine
McNally, Richard J. Q.
Young, Bryan D.
Sinclair, Paul
Rand, Vikki
Teixeira, Manuel R.
Joseph, Olivia
Robinson, Ben
Maddison, Mark
Dastugue, Nicole
Vandenberghe, Peter
Stephens, Philip J.
Cheng, Jiqiu
Van Loo, Peter
Stratton, Michael R.
Campbell, Peter J.
Harrison, Christine J.
Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia
title Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia
title_full Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia
title_fullStr Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia
title_full_unstemmed Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia
title_short Constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia
title_sort constitutional and somatic rearrangement of chromosome 21 in acute lymphoblastic leukaemia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3976272/
https://www.ncbi.nlm.nih.gov/pubmed/24670643
http://dx.doi.org/10.1038/nature13115
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