Aneuploidy and chromosomal instability: a vicious cycle driving cellular evolution and cancer genome chaos
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T. Potapova | Rong Li | Tamara A. Potapova | Jin Zhu | Jin Zhu | Rong Li
[1] David Pellman,et al. Causes and consequences of aneuploidy in cancer , 2012, Nature Reviews Genetics.
[2] A. Swerdlow,et al. Mortality and cancer incidence in males with Y polysomy in Britain: a cohort study , 2007, Human Genetics.
[3] J. Doctor,et al. Differential mitotic stability of yeast disomes derived from triploid meiosis. , 1981, Genetics.
[4] Erin L. Barnhart,et al. Reduced Mad2 expression keeps relaxed kinetochores from arresting budding yeast in mitosis , 2011, Molecular biology of the cell.
[5] K. Vousden,et al. Coping with stress: multiple ways to activate p53 , 2007, Oncogene.
[6] A. Swerdlow,et al. Cancer incidence in women with Turner syndrome in Great Britain: a national cohort study. , 2008, The Lancet. Oncology.
[7] Angelika Amon,et al. Aneuploidy Affects Proliferation and Spontaneous Immortalization in Mammalian Cells , 2008, Science.
[8] E. Korn,et al. Chromosome Transfer Induced Aneuploidy Results in Complex Dysregulation of the Cellular Transcriptome in Immortalized and Cancer Cells , 2004, Cancer Research.
[9] D. Pellman,et al. Mechanisms to suppress multipolar divisions in cancer cells with extra centrosomes. , 2008, Genes & development.
[10] W. Saunders,et al. DNA repair pathways involved in anaphase bridge formation , 2007, Genes, chromosomes & cancer.
[11] Y. Yung,et al. Constitutional Aneuploidy in the Normal Human Brain , 2005, The Journal of Neuroscience.
[12] P. Duesberg,et al. Genetic instability of cancer cells is proportional to their degree of aneuploidy. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[13] A. Terzic,et al. Early aging–associated phenotypes in Bub3/Rae1 haploinsufficient mice , 2006, The Journal of cell biology.
[14] Jason M. Sheltzer,et al. Aneuploidy Drives Genomic Instability in Yeast , 2011, Science.
[15] Cristina Montagna,et al. Aneuploidy acts both oncogenically and as a tumor suppressor. , 2007, Cancer cell.
[16] H. Heng,et al. Mitotic cell death by chromosome fragmentation. , 2007, Cancer research.
[17] B. Goud,et al. Rab35 Regulates an Endocytic Recycling Pathway Essential for the Terminal Steps of Cytokinesis , 2006, Current Biology.
[18] Karen H. Vousden,et al. p53 in health and disease , 2007, Nature Reviews Molecular Cell Biology.
[19] S. Lowe,et al. Mad2 overexpression promotes aneuploidy and tumorigenesis in mice. , 2007, Cancer cell.
[20] Lauren M. Zasadil,et al. Up-regulation of the mitotic checkpoint component Mad1 causes chromosomal instability and resistance to microtubule poisons , 2012, Proceedings of the National Academy of Sciences.
[21] E. Parry,et al. The tolerance of aneuploidy in yeast. , 1970, Genetical research.
[22] Samuel F. Bakhoum,et al. Genome stability is ensured by temporal control of kinetochore-microtubule dynamics , 2008, Nature Cell Biology.
[23] S. Strom,et al. Frequent aneuploidy among normal human hepatocytes. , 2012, Gastroenterology.
[24] G. Sarto,et al. Dicentric chromosomes and the inactivation of the centromere , 1986, Human Genetics.
[25] J. Deursen,et al. Mutant mice with small amounts of BubR1 display accelerated age-related gliosis , 2007, Neurobiology of Aging.
[26] E. Stanbridge,et al. Microcell-mediated chromosome transfer: a strategy for studying the genetics and molecular pathology of human hereditary diseases with abnormal responses to DNA damage. , 1990, Basic life sciences.
[27] J M Delabar,et al. Classification of human chromosome 21 gene-expression variations in Down syndrome: impact on disease phenotypes. , 2007, American journal of human genetics.
[28] Buddhini Samarasinghe,et al. The Hallmarks of Cancer: Fighting Back , 2013 .
[29] Jean L. Chang,et al. Initial sequence of the chimpanzee genome and comparison with the human genome , 2005, Nature.
[30] M. Grompe,et al. The ploidy-conveyor of mature hepatocytes as a source of genetic variation , 2010, Nature.
[31] Batoul Y. Abdallah,et al. Evolutionary mechanisms and diversity in cancer. , 2011, Advances in cancer research.
[32] Hongyue Dai,et al. Widespread aneuploidy revealed by DNA microarray expression profiling , 2000, Nature Genetics.
[33] M. Mann,et al. Global analysis of genome, transcriptome and proteome reveals the response to aneuploidy in human cells , 2012, Molecular Systems Biology.
[34] M. Oren,et al. p53: Guardian of ploidy , 2011, Molecular oncology.
[35] C. Bruschi,et al. Chromosome V loss due to centromere knockout or MAD2‐deletion is immediately followed by restitution of homozygous diploidy in Saccharomyces cerevisiae , 2002, Yeast.
[36] R. King,et al. Understanding cytokinesis failure. , 2010, Advances in experimental medicine and biology.
[37] Z. Bonday,et al. Centromere-associated protein-E is essential for the mammalian mitotic checkpoint to prevent aneuploidy due to single chromosome loss , 2003, The Journal of cell biology.
[38] N. Chua,et al. Methods in Arabidopsis research. , 1992 .
[39] E. Salmon,et al. The spindle-assembly checkpoint in space and time , 2007, Nature Reviews Molecular Cell Biology.
[40] J. Levine,et al. Surfing the p53 network , 2000, Nature.
[41] A. Levine,et al. Surfing the p53 network , 2000, Nature.
[42] J. V. van Deursen,et al. Aurora B hyperactivation by Bub1 overexpression promotes chromosome missegregation , 2011, Cell cycle.
[43] R. Benezra,et al. Mad2 is a critical mediator of the chromosome instability observed upon Rb and p53 pathway inhibition. , 2011, Cancer cell.
[44] Rong Li,et al. Hsp90 Stress Potentiates Rapid Cellular Adaptation through Induction of Aneuploidy , 2012, Nature.
[45] R. Medema,et al. Chromosome Segregation Errors as a Cause of DNA Damage and Structural Chromosome Aberrations , 2011, Science.
[46] E. Fisher,et al. Mouse autosomal trisomy: two's company, three's a crowd. , 1999, Trends in genetics : TIG.
[47] Duane A. Compton,et al. Proliferation of aneuploid human cells is limited by a p53-dependent mechanism , 2010, The Journal of cell biology.
[48] M. Glotzer,et al. An ECT2–centralspindlin complex regulates the localization and function of RhoA , 2005, The Journal of cell biology.
[49] Qinghua Shi,et al. Chromosome nondisjunction yields tetraploid rather than aneuploid cells in human cell lines , 2005, Nature.
[50] N. Hastie,et al. Transcriptome analysis of human autosomal trisomy. , 2002, Human molecular genetics.
[51] T. Petes,et al. Meiotic Chromosome Segregation in Triploid Strains of Saccharomyces cerevisiae , 2010, Genetics.
[52] M. Oshimura,et al. Dysregulation of Gene Expression in the Artificial Human Trisomy Cells of Chromosome 8 Associated with Transformed Cell Phenotypes , 2011, PloS one.
[53] F. Kittrell,et al. Overexpression of Separase induces aneuploidy and mammary tumorigenesis , 2008, Proceedings of the National Academy of Sciences.
[54] D. Baker,et al. Whole chromosome instability caused by Bub1 insufficiency drives tumorigenesis through tumor suppressor gene loss of heterozygosity. , 2009, Cancer cell.
[55] D. Gerlich,et al. Aurora B-Mediated Abscission Checkpoint Protects against Tetraploidization , 2009, Cell.
[56] A. Amon,et al. Identification of Aneuploidy-Selective Antiproliferation Compounds , 2011, Cell.
[57] Z. Storchová,et al. The consequences of tetraploidy and aneuploidy , 2008, Journal of Cell Science.
[58] N. Pavelka,et al. Karyotypic Determinants of Chromosome Instability in Aneuploid Budding Yeast , 2012, PLoS genetics.
[59] D. Compton,et al. Checkpoint-Independent Stabilization of Kinetochore-Microtubule Attachments by Mad2 in Human Cells , 2012, Current Biology.
[60] G. Prendergast,et al. Human BIN3 Complements the F-actin Localization Defects Caused by Loss of Hob3p, the Fission Yeast Homolog of Rvs161p* , 2001, The Journal of Biological Chemistry.
[61] O. Reish,et al. Sporadic aneuploidy in PHA-stimulated lymphocytes of Turner’s syndrome patients , 2006, Chromosome Research.
[62] T. Dobzhansky. Genetics and the Origin of Species , 1937 .
[63] K. Fujisawa,et al. Role of citron kinase as a target of the small GTPase Rho in cytokinesis , 1998, Nature.
[64] D. Pellman,et al. Centrosomes and cancer: how cancer cells divide with too many centrosomes , 2009, Cancer and Metastasis Reviews.
[65] Neil J Ganem,et al. Tetraploidy, aneuploidy and cancer. , 2007, Current opinion in genetics & development.
[66] M. Matzke,et al. Structural instability of a transgene locus in tobacco is associated with aneuploidy. , 1996, The Plant journal : for cell and molecular biology.
[67] J. Crispino,et al. Myeloid leukemia in Down syndrome. , 2011, Critical reviews in oncogenesis.
[68] Nazneen Rahman,et al. Generation of trisomies in cancer cells by multipolar mitosis and incomplete cytokinesis , 2010, Proceedings of the National Academy of Sciences.
[69] D. Benbrook,et al. Nature Reviews Cancer , 2003 .
[70] Alan R. Fersht,et al. Awakening guardian angels: drugging the p53 pathway , 2009, Nature Reviews Cancer.
[71] O. Reish,et al. Sporadic Aneuploidy in PHA-Stimulated Lymphocytes of Trisomies 21, 18, and 13 , 2011, Cytogenetic and Genome Research.
[72] Jiandong Chen,et al. Overexpressed pituitary tumor-transforming gene causes aneuploidy in live human cells. , 2003, Endocrinology.
[73] Neil J Ganem,et al. DNA breaks and chromosome pulverization from errors in mitosis , 2012, Nature.
[74] Maitreya J. Dunham,et al. Effects of Aneuploidy on Cellular Physiology and Cell Division in Haploid Yeast , 2007, Science.
[75] Anita Saraf,et al. Aneuploidy confers quantitative proteome changes and phenotypic variation in budding yeast , 2010, Nature.
[76] K. Anders,et al. A strategy for constructing aneuploid yeast strains by transient nondisjunction of a target chromosome , 2009, BMC Genetics.
[77] Jonathan Pevsner,et al. Global up-regulation of chromosome 21 gene expression in the developing Down syndrome brain. , 2003, Genomics.
[78] D. Albertson,et al. Chromosome aberrations in solid tumors , 2003, Nature Genetics.
[79] J. V. van Deursen,et al. Bub1 overexpression induces aneuploidy and tumor formation through Aurora B kinase hyperactivation , 2011, The Journal of cell biology.
[80] N. Carter,et al. Massive Genomic Rearrangement Acquired in a Single Catastrophic Event during Cancer Development , 2011, Cell.
[81] M. Roizen,et al. Hallmarks of Cancer: The Next Generation , 2012 .
[82] Y. Kashi,et al. Molecular-Genetic Biodiversity in a Natural Population of the Yeast Saccharomyces cerevisiae From “Evolution Canyon”: Microsatellite Polymorphism, Ploidy and Controversial Sexual Status , 2006, Genetics.
[83] Magali Olivier,et al. TP53 mutations in human cancers: origins, consequences, and clinical use. , 2010, Cold Spring Harbor perspectives in biology.
[84] Norman Pavelka,et al. Aneuploidy Underlies Rapid Adaptive Evolution of Yeast Cells Deprived of a Conserved Cytokinesis Motor , 2008, Cell.
[85] Weimin Bi,et al. Aneuploidy as a mechanism for stress-induced liver adaptation. , 2012, The Journal of clinical investigation.
[86] E. Nigg,et al. Origins and consequences of centrosome aberrations in human cancers , 2006, International journal of cancer.
[87] Nicholas D. Socci,et al. Mad2-induced chromosome instability leads to lung tumor relapse after oncogene withdrawal , 2010, Nature.
[88] P. Hergert,et al. Depletion of centromeric MCAK leads to chromosome congression and segregation defects due to improper kinetochore attachments. , 2003, Molecular biology of the cell.
[89] David Pellman,et al. A Mechanism Linking Extra Centrosomes to Chromosomal Instability , 2009, Nature.
[90] C. Bruschi,et al. Differential chromosome control of ploidy in the yeast Saccharomyces cerevisiae , 2005, Yeast.
[91] A. Swerdlow,et al. Cancer Incidence and Mortality in Men With Klinefelter Syndrome: A Cohort Study , 2006 .
[92] Maitreya J. Dunham,et al. Identification of Aneuploidy-Tolerating Mutations , 2010, Cell.
[93] David Pellman,et al. Cytokinesis failure generating tetraploids promotes tumorigenesis in p53-null cells , 2005, Nature.
[94] J. Ward,et al. Heterozygous deletion of mitotic arrest-deficient protein 1 (MAD1) increases the incidence of tumors in mice. , 2007, Cancer research.
[95] G. Klein,et al. Microcell‐mediated chromosome transfer provides evidence that polysomy promotes structural instability in tumor cell chromosomes through asynchronous replication and breakage within late‐replicating regions , 2004, Genes, chromosomes & cancer.
[96] A. McKenna,et al. Absolute quantification of somatic DNA alterations in human cancer , 2012, Nature Biotechnology.