Double-strand breaks associated with repetitive DNA can reshape the genome
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[1] Yong-shu He,et al. [Structural variation in the human genome]. , 2009, Yi chuan = Hereditas.
[2] Joshua M. Korn,et al. Mapping and sequencing of structural variation from eight human genomes , 2008, Nature.
[3] P. Maxwell,et al. Retrosequence formation restructures the yeast genome. , 2007, Genes & development.
[4] Philip M. Kim,et al. Paired-End Mapping Reveals Extensive Structural Variation in the Human Genome , 2007, Science.
[5] L. Symington,et al. Template switching during break-induced replication , 2007, Nature.
[6] P. Deininger,et al. Inviting instability: Transposable elements, double-strand breaks, and the maintenance of genome integrity. , 2007, Mutation research.
[7] T. Petes,et al. Inverted DNA Repeats Channel Repair of Distant Double-Strand Breaks into Chromatid Fusions and Chromosomal Rearrangements , 2007, Molecular and Cellular Biology.
[8] David Gresham,et al. Global Mapping of Transposon Location , 2006, PLoS genetics.
[9] Miroslav Radman,et al. Reassembly of shattered chromosomes in Deinococcus radiodurans , 2006, Nature.
[10] P. Mieczkowski,et al. Recombination between retrotransposons as a source of chromosome rearrangements in the yeast Saccharomyces cerevisiae. , 2006, DNA repair.
[11] J. Haber,et al. Break-induced replication and recombinational telomere elongation in yeast. , 2006, Annual review of biochemistry.
[12] D. Garfinkel. Genome evolution mediated by Ty elements in Saccharomyces , 2005, Cytogenetic and Genome Research.
[13] T. Petes,et al. Chromosomal Translocations in Yeast Induced by Low Levels of DNA Polymerase A Model for Chromosome Fragile Sites , 2005, Cell.
[14] A. Gabriel,et al. Reciprocal translocations in Saccharomyces cerevisiae formed by nonhomologous end joining. , 2004, Genetics.
[15] B. Birren,et al. Sequencing and comparison of yeast species to identify genes and regulatory elements , 2003, Nature.
[16] R. Kolodner,et al. Induction of genome instability by DNA damage in Saccharomyces cerevisiae. , 2003, DNA repair.
[17] David Botstein,et al. Characteristic genome rearrangements in experimental evolution of Saccharomyces cerevisiae , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[18] M. Kupiec. Damage-induced recombination in the yeast Saccharomyces cerevisiae. , 2000, Mutation research.
[19] S. Oliver,et al. Chromosomal evolution in Saccharomyces , 2000, Nature.
[20] S. Salzberg,et al. Genome sequence of the radioresistant bacterium Deinococcus radiodurans R1. , 1999, Science.
[21] D. Gordenin,et al. A Novel Role in DNA Metabolism for the Binding of Fen1/Rad27 to PCNA and Implications for Genetic Risk , 1999, Molecular and Cellular Biology.
[22] D. Voytas,et al. Transposable elements and genome organization: a comprehensive survey of retrotransposons revealed by the complete Saccharomyces cerevisiae genome sequence. , 1998, Genome research.
[23] A. Friedl,et al. Radiation-induced chromosome aberrations in Saccharomyces cerevisiae: influence of DNA repair pathways. , 1998, Genetics.
[24] P. Brown,et al. Exploring the metabolic and genetic control of gene expression on a genomic scale. , 1997, Science.
[25] M. Kupiec,et al. Damage-induced ectopic recombination in the yeast Saccharomyces cerevisiae. , 1997, Mutation research.
[26] M. Kupiec,et al. Recombination of Ty elements in yeast can be induced by a double-strand break. , 1995, Genetics.
[27] K. Bloom,et al. A chromosome breakage assay to monitor mitotic forces in budding yeast. , 1994, Journal of cell science.
[28] R. Rothstein,et al. DNA-damaging agents stimulate the formation of directed reciprocal translocations in Saccharomyces cerevisiae. , 1994, Mutation research.
[29] M. Resnick,et al. Lethality induced by a single site-specific double-strand break in a dispensable yeast plasmid. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[30] M. Kupiec,et al. Ectopic recombination between Ty elements in Saccharomyces cerevisiae is not induced by DNA damage , 1992, Molecular and cellular biology.
[31] P. Hieter,et al. Recombinational repair of diverged DNAs : a study of homoeologous chromosomes and mammalian YACs in yeast , 1992, Molecular and General Genetics MGG.
[32] T. Kunkel,et al. Eukaryotic DNA polymerase amino acid sequence required for 3'----5' exonuclease activity. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[33] M. Skaanild,et al. Lack of DNA homology in a pair of divergent chromosomes greatly sensitizes them to loss by DNA damage. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[34] J R Johnston,et al. Genealogy of principal strains of the yeast genetic stock center. , 1986, Genetics.
[35] J. Haber,et al. Rad52-independent mitotic gene conversion in Saccharomyces cerevisiae frequently results in chromosomal loss. , 1985, Genetics.
[36] C. Popescu,et al. Reciprocal translocations in pigs. Their detection and consequences on animal performance and economic losses. , 1984, The Journal of heredity.
[37] G. Brunborg,et al. Cell-cycle-specific repair of DNA double strand breaks in Saccharomyces cerevisiae. , 1980, Radiation research.
[38] T. Petes,et al. Characterization of two types of yeast ribosomal DNA genes , 1978, Journal of bacteriology.
[39] L. Hartwell,et al. Macromolecule Synthesis in Temperature-sensitive Mutants of Yeast , 1967, Journal of bacteriology.
[40] H J Muller,et al. ARTIFICIAL TRANSMUTATION OF THE GENE. , 1927, Science.
[41] J. Nickoloff,et al. Regulation of DNA double-strand break repair pathway choice , 2008, Cell Research.
[42] Francesca Storici,et al. The delitto perfetto approach to in vivo site-directed mutagenesis and chromosome rearrangements with synthetic oligonucleotides in yeast. , 2006, Methods in enzymology.
[43] R. Kolodner,et al. Analysis of gross-chromosomal rearrangements in Saccharomyces cerevisiae. , 2006, Methods in enzymology.
[44] R. Tibshirani,et al. A method for calling gains and losses in array CGH data. , 2005, Biostatistics.
[45] M. Meselson,et al. Deleterious transposable elements and the extinction of asexuals. , 2005, BioEssays : news and reviews in molecular, cellular and developmental biology.
[46] Daniel R. Richards,et al. Genetic diversity in yeast assessed with whole-genome oligonucleotide arrays. , 2003, Genetics.
[47] B. Mcclintock. Cytological observations of deficiencies involving known genes, translocations and an inversion in Zea mays , 1931 .