E. coli SbcCD and RecA Control Chromosomal Rearrangement Induced by an Interrupted Palindrome
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Lucy H. Jones | J. Blackwood | D. Leach | M. White | E. Darmon | Frédéric Lincker | Elise Darmon | John K. Blackwood | Frédéric Lincker | John K. Eykelenboom | Martin White | Ewa Okely | David R. Leach | John K Eykelenboom | L. Jones | E. Okely | Ewa A. Okely
[1] D. Gordenin,et al. The Mre11 Complex Is Required for Repair of Hairpin-Capped Double-Strand Breaks and Prevention of Chromosome Rearrangements , 2002, Cell.
[2] J. Sambrook,et al. Molecular cloning–A laboratory manual. New York: Cold Spring Harbor Laboratory. 1982, 545 S., 42 $ , 1985 .
[3] B. Emanuel,et al. Palindrome-mediated chromosomal translocations in humans. , 2006, DNA repair.
[4] J. Keasling,et al. Homogeneous expression of the P(BAD) promoter in Escherichia coli by constitutive expression of the low-affinity high-capacity AraE transporter. , 2001, Microbiology.
[5] Atina G. Coté,et al. Palindromes and genomic stress fractures: bracing and repairing the damage. , 2006, DNA repair.
[6] B. Michel,et al. DNA double‐strand breaks caused by replication arrest , 1997, The EMBO journal.
[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] A. Davison,et al. The effects of nucleotide sequence changes on DNA secondary structure formation in Escherichia coli are consistent with cruciform extrusion in vivo. , 1994, Genetics.
[9] D. Gillespie,et al. Formation of large palindromic DNA by homologous recombination of short inverted repeat sequences in Saccharomyces cerevisiae. , 2002, Genetics.
[10] D. Lydall,et al. Telomerase- and recombination-independent immortalization of budding yeast. , 2004, Genes & development.
[11] J. Blackwood,et al. SbcCD causes a double-strand break at a DNA palindrome in the Escherichia coli chromosome. , 2008, Molecular cell.
[12] T. Itoh,et al. Rad51 suppresses gross chromosomal rearrangement at centromere in Schizosaccharomyces pombe , 2008, The EMBO journal.
[13] S. Kowalczykowski,et al. RecBCD Enzyme and the Repair of Double-Stranded DNA Breaks , 2008, Microbiology and Molecular Biology Reviews.
[14] A. Aguilera,et al. Genetic stability and DNA rearrangements associated with a 2 × 1.1-Kb perfect palindrome in Escherichia coli , 1998, Molecular and General Genetics MGG.
[15] Atina G. Coté,et al. Rapid, Stabilizing Palindrome Rearrangements in Somatic Cells by the Center-Break Mechanism , 2003, Molecular and Cellular Biology.
[16] S. Cohen,et al. Long palindromes formed in Streptomyces by nonrecombinational intra-strand annealing. , 2000, Genes & development.
[17] S. Tapscott,et al. Widespread and nonrandom distribution of DNA palindromes in cancer cells provides a structural platform for subsequent gene amplification , 2005, Nature Genetics.
[18] R. G. Lloyd,et al. Holliday junction resolvases encoded by homologous rusA genes in Escherichia coli K-12 and phage 82. , 1996, Journal of molecular biology.
[19] N. Shimizu,et al. Episomal High Copy Number Maintenance of Hairpin-capped DNA Bearing a Replication Initiation Region in Human Cells* , 2009, The Journal of Biological Chemistry.
[20] Hisashi Tanaka,et al. Palindromic gene amplification — an evolutionarily conserved role for DNA inverted repeats in the genome , 2009, Nature Reviews Cancer.
[21] D. Leach,et al. Recombination at double-strand breaks and DNA ends: conserved mechanisms from phage to humans. , 2001, Molecular cell.
[22] E. Wilson,et al. SbcCD Regulation and Localization in Escherichia coli , 2007, Journal of bacteriology.
[23] S. Brill,et al. Substrate specificity of the Saccharomyces cerevisiae Mus81-Mms4 endonuclease. , 2005, DNA repair.
[24] Atina G. Coté,et al. Mus81-dependent double-strand DNA breaks at in vivo-generated cruciform structures in S. cerevisiae. , 2008, Molecular cell.
[25] B. Trask,et al. Short inverted repeats initiate gene amplification through the formation of a large DNA palindrome in mammalian cells , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[26] L. Liu,et al. A cruciform-dumbbell model for inverted dimer formation mediated by inverted repeats. , 1997, Nucleic acids research.
[27] N. W. Davis,et al. The complete genome sequence of Escherichia coli K-12. , 1997, Science.
[28] B. Shafer,et al. Fidelity of mitotic double-strand-break repair in Saccharomyces cerevisiae: a role for SAE2/COM1. , 2001, Genetics.
[29] G. Sharples. The X philes: structure‐specific endonucleases that resolve Holliday junctions , 2001, Molecular microbiology.
[30] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[31] Martin A. White,et al. Non-random segregation of sister chromosomes in Escherichia coli , 2008, Nature.
[32] S. West,et al. Gross chromosomal rearrangements and genetic exchange between nonhomologous chromosomes following BRCA2 inactivation. , 2000, Genes & development.
[33] Ian Grainge,et al. Tracking of controlled Escherichia coli replication fork stalling and restart at repressor‐bound DNA in vivo , 2006, The EMBO journal.
[34] R. G. Lloyd,et al. Substrate specificity of RusA resolvase reveals the DNA structures targeted by RuvAB and RecG in vivo. , 2002, Molecular cell.
[35] S. McAteer,et al. Tools for Characterization of Escherichia coli Genes of Unknown Function , 2002, Journal of bacteriology.
[36] M. Schwab,et al. Constitutional genomic instability with inversions, duplications, and amplifications in 9p23-24 in BRCA2 mutation carriers. , 2001, Cancer research.
[37] T. Allers,et al. Stabilization and electrophoretic analysis of meiotic recombination intermediates in Saccharomyces cerevisiae. , 2009, Methods in molecular biology.
[38] J Whang-Peng,et al. Inverted repeats as genetic elements for promoting DNA inverted duplication: implications in gene amplification. , 2001, Nucleic acids research.
[39] B. Mcclintock,et al. The Stability of Broken Ends of Chromosomes in Zea Mays. , 1941, Genetics.
[40] P. Mieczkowski,et al. The Pattern of Gene Amplification Is Determined by the Chromosomal Location of Hairpin-Capped Breaks , 2006, Cell.
[41] J. Haber,et al. Gene Amplification: Yeast Takes a Turn , 2006, Cell.
[42] S. Tapscott,et al. Intrastrand Annealing Leads to the Formation of a Large DNA Palindrome and Determines the Boundaries of Genomic Amplification in Human Cancer , 2007, Molecular and Cellular Biology.
[43] L. Liu,et al. Inversion/dimerization of plasmids mediated by inverted repeats. , 1999, Journal of molecular biology.
[44] L. Liu,et al. A replicational model for DNA recombination between direct repeats. , 1996, Journal of molecular biology.
[45] Karen N. Allen,et al. On the deletion of inverted repeated DNA in Escherichia coli: effects of length, thermal stability, and cruciform formation in vivo. , 1991, Genetics.
[46] M. Yao,et al. Induction of Large DNA Palindrome Formation in Yeast: Implications for Gene Amplification and Genome Stability in Eukaryotes , 1996, Cell.
[47] B. Shafer,et al. A mechanism of palindromic gene amplification in Saccharomyces cerevisiae. , 2005, Genes & development.
[48] D. Leach,et al. Replication strand preference for deletions associated with DNA palindromes , 1998, Molecular microbiology.
[49] D. Botstein,et al. Host/vector interactions which affect the viability of recombinant phage lambda clones. , 1986, Gene.
[50] A. Rattray,et al. Hairpin- and cruciform-mediated chromosome breakage: causes and consequences in eukaryotic cells. , 2007, Frontiers in bioscience : a journal and virtual library.
[51] A. Malkova,et al. Large inverted repeats in the vicinity of a single double-strand break strongly affect repair in yeast diploids lacking Rad51. , 2008, Mutation research.
[52] Jeffrey H. Miller,et al. A short course in bacterial genetics , 1992 .
[53] B. Friedenson,et al. The BRCA1/2 pathway prevents hematologic cancers in addition to breast and ovarian cancers , 2007, BMC Cancer.
[54] J. Blackwood,et al. Proofreading and Secondary Structure Processing Determine the Orientation Dependence of CAG·CTG Trinucleotide Repeat Instability in Escherichia coli , 2007, Genetics.