The consequences of tetraploidy and aneuploidy
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[1] D. Pellman,et al. Mechanisms to suppress multipolar divisions in cancer cells with extra centrosomes. , 2008, Genes & development.
[2] Alexey Khodjakov,et al. Centrosome Amplification Can Initiate Tumorigenesis in Flies , 2008, Cell.
[3] E. Papoutsakis,et al. Tumor Suppressor Protein p53 Regulates Megakaryocytic Polyploidization and Apoptosis* , 2008, Journal of Biological Chemistry.
[4] M. Peifer,et al. Original CIN: reviewing roles for APC in chromosome instability , 2008, The Journal of cell biology.
[5] Alexey Khodjakov,et al. Extra centrosomes and/or chromosomes prolong mitosis in human cells , 2008, Nature Cell Biology.
[6] D. Gisselsson,et al. When the Genome Plays Dice: Circumvention of the Spindle Assembly Checkpoint and Near-Random Chromosome Segregation in Multipolar Cancer Cell Mitoses , 2008, PloS one.
[7] Th. Boveri. Concerning the Origin of Malignant Tumours by Theodor Boveri. Translated and annotated by Henry Harris , 2008, Journal of Cell Science.
[8] V. Yang,et al. Human cancer cells commonly acquire DNA damage during mitotic arrest. , 2007, Cancer research.
[9] G. Sluder,et al. Cell-Cycle Progression without an Intact Microtubule Cytoskeleton , 2007, Current Biology.
[10] S. Otto,et al. The Evolutionary Consequences of Polyploidy , 2007, Cell.
[11] D. Pellman,et al. Limiting the Proliferation of Polyploid Cells , 2007, Cell.
[12] M. Justice,et al. Overexpression of Eg5 causes genomic instability and tumor formation in mice. , 2007, Cancer research.
[13] D. Baker,et al. Bub1 mediates cell death in response to chromosome missegregation and acts to suppress spontaneous tumorigenesis , 2007, The Journal of cell biology.
[14] R. Green,et al. APC mutations lead to cytokinetic failures in vitro and tetraploid genotypes in Min mice , 2007, The Journal of cell biology.
[15] E. Nigg,et al. Plk4-induced centriole biogenesis in human cells. , 2007, Developmental cell.
[16] F. McKeon,et al. p53 activation in response to mitotic spindle damage requires signaling via BubR1-mediated phosphorylation. , 2007, Cancer research.
[17] Kyung S. Lee,et al. Centrosome replication in hydroxyurea-arrested CHO cells expressing GFP-tagged centrin2 , 2007, Journal of Cell Science.
[18] T. Roberts,et al. Surveillance mechanism linking Bub1 loss to the p53 pathway , 2007, Proceedings of the National Academy of Sciences.
[19] E. Salmon,et al. The spindle-assembly checkpoint in space and time , 2007, Nature Reviews Molecular Cell Biology.
[20] Y. Lazebnik,et al. A Virus Causes Cancer by Inducing Massive Chromosomal Instability through Cell Fusion , 2007, Current Biology.
[21] B. Delaval,et al. Loss of centrosome integrity induces p38—p53—p21-dependent G1—S arrest , 2007, Nature Cell Biology.
[22] O. Sansom,et al. Loss of APC induces polyploidy as a result of a combination of defects in mitosis and apoptosis , 2007, The Journal of cell biology.
[23] M. Debatisse,et al. Sustained mitotic block elicits DNA breaks: one-step alteration of ploidy and chromosome integrity in mammalian cells , 2007, Oncogene.
[24] Carlo C Maley,et al. Multistage carcinogenesis in Barrett's esophagus. , 2007, Cancer letters.
[25] S. Lowe,et al. Mad2 overexpression promotes aneuploidy and tumorigenesis in mice. , 2007, Cancer cell.
[26] F. McKeon,et al. p 53 Activation in Response to Mitotic Spindle Damage Requires Signaling via BubR 1-Mediated Phosphorylation , 2007 .
[27] Cristina Montagna,et al. Aneuploidy acts both oncogenically and as a tumor suppressor. , 2007, Cancer cell.
[28] C. Deng,et al. Overexpression of aurora kinase A in mouse mammary epithelium induces genetic instability preceding mammary tumor formation , 2006, Oncogene.
[29] Hans Clevers,et al. Wnt/β-Catenin Signaling in Development and Disease , 2006, Cell.
[30] G. Parmigiani,et al. The Consensus Coding Sequences of Human Breast and Colorectal Cancers , 2006, Science.
[31] Kendra S. Burbank,et al. Genome-wide genetic analysis of polyploidy in yeast , 2006, Nature.
[32] M. Oren,et al. A positive feedback loop between the p53 and Lats2 tumor suppressors prevents tetraploidization. , 2006, Genes & development.
[33] Miho Ohsugi,et al. The Plk1 target Kizuna stabilizes mitotic centrosomes to ensure spindle bipolarity , 2006, Nature Cell Biology.
[34] N. Wong,et al. Polyploidization increases the sensitivity to DNA‐damaging agents in mammalian cells , 2006, FEBS letters.
[35] Christopher W. Jones,et al. Perturbing integrin function inhibits microtubule growth from centrosomes, spindle assembly, and cytokinesis , 2006, The Journal of cell biology.
[36] Conly L. Rieder,et al. Mitotic Checkpoint Slippage in Humans Occurs via Cyclin B Destruction in the Presence of an Active Checkpoint , 2006, Current Biology.
[37] M. Blagosklonny. Prolonged Mitosis Versus Tetraploid Checkpoint: How p53 Measures the Duration of Mitosis , 2006, Cell cycle.
[38] M. Gonsebatt,et al. Tetraploidy and chromosomal instability are early events during cervical carcinogenesis. , 2006, Carcinogenesis.
[39] Y. Lazebnik,et al. A primate virus generates transformed human cells by fusion , 2005, The Journal of cell biology.
[40] Luca Comai,et al. The advantages and disadvantages of being polyploid , 2005, Nature Reviews Genetics.
[41] David Pellman,et al. Cytokinesis failure generating tetraploids promotes tumorigenesis in p53-null cells , 2005, Nature.
[42] Qinghua Shi,et al. Chromosome nondisjunction yields tetraploid rather than aneuploid cells in human cell lines , 2005, Nature.
[43] Geert J. P. L. Kops,et al. On the road to cancer: aneuploidy and the mitotic checkpoint , 2005, Nature Reviews Cancer.
[44] S. Gollin,et al. Spindle Multipolarity Is Prevented by Centrosomal Clustering , 2005, Science.
[45] D. Hansemann. Ueber asymmetrische Zelltheilung in Epithelkrebsen und deren biologische Bedeutung , 1890, Archiv für pathologische Anatomie und Physiologie und für klinische Medicin.
[46] T. Stearns,et al. Mammalian cells lack checkpoints for tetraploidy, aberrant centrosome number, and cytokinesis failure , 2005, BMC Cell Biology.
[47] A. Venkitaraman,et al. Abnormal Cytokinesis in Cells Deficient in the Breast Cancer Susceptibility Protein BRCA2 , 2004, Science.
[48] W. Gerald,et al. Rb inactivation promotes genomic instability by uncoupling cell cycle progression from mitotic control , 2004, Nature.
[49] Erich A Nigg,et al. Aurora kinases link chromosome segregation and cell division to cancer susceptibility. , 2004, Current opinion in genetics & development.
[50] D. Warburton,et al. No maternal age relationship for polyploidy , 1994, Human Genetics.
[51] H. Rehder,et al. Polyploidies in abortion material decrease with maternal age , 1993, Human Genetics.
[52] D. Pellman,et al. From polyploidy to aneuploidy, genome instability and cancer , 2004, Nature Reviews Molecular Cell Biology.
[53] F. McKeon,et al. Dual roles of human BubR1, a mitotic checkpoint kinase, in the monitoring of chromosomal instability. , 2003, Cancer cell.
[54] M. Barrett,et al. Molecular phenotype of spontaneously arising 4N (G2-tetraploid) intermediates of neoplastic progression in Barrett's esophagus. , 2003, Cancer research.
[55] C. Bréchot,et al. Liver Cell Polyploidization: A Pivotal Role for Binuclear Hepatocytes* , 2003, Journal of Biological Chemistry.
[56] R. Margolis,et al. G1 tetraploidy checkpoint and the suppression of tumorigenesis , 2003, Journal of cellular biochemistry.
[57] Jean S. Campbell,et al. The role of hepatocytes and oval cells in liver regeneration and repopulation , 2003, Mechanisms of Development.
[58] Erich A. Nigg,et al. Centrosome aberrations: cause or consequence of cancer progression? , 2002, Nature Reviews Cancer.
[59] P. Meraldi,et al. Aurora‐A overexpression reveals tetraploidization as a major route to centrosome amplification in p53−/− cells , 2002, The EMBO journal.
[60] E. Salmon,et al. Checkpoint signals in grasshopper meiosis are sensitive to microtubule attachment, but tension is still essential. , 2001, Journal of cell science.
[61] R. Margolis,et al. Tetraploid state induces p53-dependent arrest of nontransformed mammalian cells in G1. , 2001, Molecular biology of the cell.
[62] B. Edgar,et al. Endoreplication Cell Cycles More for Less , 2001, Cell.
[63] S. Otto,et al. Masking and purging mutations following EMS treatment in haploid, diploid and tetraploid yeast (Saccharomyces cerevisiae). , 2001, Genetical research.
[64] E. Schröck,et al. Centrosome amplification and instability occurs exclusively in aneuploid, but not in diploid colorectal cancer cell lines, and correlates with numerical chromosomal aberrations , 2000, Genes, chromosomes & cancer.
[65] S. Sen,et al. Aneuploidy and cancer , 2000, Current opinion in oncology.
[66] J. Maller,et al. Requirement of Cdk2-cyclin E activity for repeated centrosome reproduction in Xenopus egg extracts. , 1999, Science.
[67] A Elhajouji,et al. Spindle poisons can induce polyploidy by mitotic slippage and micronucleate mononucleates in the cytokinesis-block assay. , 1998, Mutagenesis.
[68] T. Jacks,et al. Characterization of the p53-Dependent Postmitotic Checkpoint following Spindle Disruption , 1998, Molecular and Cellular Biology.
[69] B. Brinkley,et al. Supernumerary centrosomes and cancer: Boveri's hypothesis resurrected. , 1998, Cell motility and the cytoskeleton.
[70] D. Forbes,et al. Mitotic repression of the transcriptional machinery. , 1997, Trends in biochemical sciences.
[71] K. Kinzler,et al. Genetic instability in colorectal cancers , 1997, Nature.
[72] Carissa A. Sanchez,et al. 17p (p53) allelic losses, 4N (G2/tetraploid) populations, and progression to aneuploidy in Barrett's esophagus. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[73] J. Sikorav,et al. Forces on chromosomal DNA during anaphase. , 1996, Biophysical journal.
[74] Carissa A. Sanchez,et al. A p53-dependent mouse spindle checkpoint , 1995, Science.
[75] A. Böcking,et al. Polyploidy in non-neoplastic tissues. , 1994, Journal of clinical pathology.
[76] Thea D. Tlsty,et al. Altered cell cycle arrest and gene amplification potential accompany loss of wild-type p53 , 1992, Cell.
[77] B. Eiben,et al. Cytogenetic analysis of 750 spontaneous abortions with the direct-preparation method of chorionic villi and its implications for studying genetic causes of pregnancy wastage. , 1990, American journal of human genetics.
[78] A. Aguilera,et al. High levels of chromosome instability in polyploids of Saccharomyces cerevisiae. , 1990, Mutation research.
[79] B. Vogelstein,et al. A genetic model for colorectal tumorigenesis , 1990, Cell.
[80] W G Alvord,et al. Methods for comparing Salmonella mutagenicity data sets using nonlinear models. , 1990, Mutation research.
[81] S. Shackney,et al. Model for the genetic evolution of human solid tumors. , 1989, Cancer research.
[82] R. Palmiter,et al. Pancreatic neoplasia induced by SV40 T-antigen expression in acinar cells of transgenic mice. , 1987, Science.
[83] P. Jacobs,et al. A cytogenetic study of 1000 spontaneous abortions , 1980, Annals of human genetics.
[84] J. Cowell,et al. Changes in DNA content during in vitro transformation of mouse salivary gland epithelium. , 1980, Journal of the National Cancer Institute.
[85] D. Carr,et al. Q-banding of chromosomes in human spontaneous abortions. , 1978, Canadian journal of genetics and cytology. Journal canadien de genetique et de cytologie.
[86] Mullins Jm,et al. Terminal phase of cytokinesis in D-98S cells , 1977 .
[87] J. Mullins,et al. Terminal phase of cytokinesis in D-98S cells , 1977, The Journal of cell biology.
[88] B. Danes. The Gardner syndrome: increased tetraploidy in cultured skin fibroblast. , 1976, Journal of medical genetics.
[89] Isolation and analysis of somatic hybrids derived from two human diploid cells. , 1974, Proceedings of the National Academy of Sciences of the United States of America.