Break-induced replication is a source of mutation clusters underlying kataegis.
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Cynthia J. Sakofsky | Steven A. Roberts | P. Mieczkowski | D. Gordenin | M. Resnick | Ewa P. Malc | A. Malkova | S. Roberts
[1] Gerald R. Fink,et al. Guide to yeast genetics and molecular biology , 1993 .
[2] J. Essigmann,et al. Mutagenesis, genotoxicity, and repair of 1-methyladenine, 3-alkylcytosines, 1-methylguanine, and 3-methylthymine in alkB Escherichia coli. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[3] J. Haber,et al. RAD51-Dependent Break-Induced Replication Differs in Kinetics and Checkpoint Responses from RAD51-Mediated Gene Conversion , 2005, Molecular and Cellular Biology.
[4] T. Petes,et al. Chromosomal Translocations in Yeast Induced by Low Levels of DNA Polymerase A Model for Chromosome Fragile Sites , 2005, Cell.
[5] Manel Camps,et al. Genetic Constraints on Protein Evolution , 2007, Critical reviews in biochemistry and molecular biology.
[6] A. Malkova,et al. Defective Break-Induced Replication Leads to Half-Crossovers in Saccharomyces cerevisiae , 2008, Genetics.
[7] Jiri Bartek,et al. An Oncogene-Induced DNA Damage Model for Cancer Development , 2008, Science.
[8] D. Gordenin,et al. Hypermutability of Damaged Single-Strand DNA Formed at Double-Strand Breaks and Uncapped Telomeres in Yeast Saccharomyces cerevisiae , 2008, PLoS genetics.
[9] L. Symington,et al. Aberrant Double-Strand Break Repair Resulting in Half Crossovers in Mutants Defective for Rad51 or the DNA Polymerase δ Complex , 2009, Molecular and Cellular Biology.
[10] A. Malkova,et al. Defective Resection at DNA Double-Strand Breaks Leads to De Novo Telomere Formation and Enhances Gene Targeting , 2010, PLoS genetics.
[11] D. Gordenin,et al. A single-strand specific lesion drives MMS-induced hyper-mutability at a double-strand break in yeast. , 2010, DNA repair.
[12] A. Malkova,et al. Break-Induced Replication Is Highly Inaccurate , 2011, PLoS biology.
[13] P. Mieczkowski,et al. Damage-induced localized hypermutability , 2011, Cell cycle.
[14] Steven A. Roberts,et al. Clustered mutations in yeast and in human cancers can arise from damaged long single-strand DNA regions. , 2012, Molecular cell.
[15] S. Antonarakis,et al. A single-nucleotide substitution mutator phenotype revealed by exome sequencing of human colon adenomas. , 2012, Cancer research.
[16] I. Rogozin,et al. AID/APOBEC cytosine deaminase induces genome-wide kataegis , 2012, Biology Direct.
[17] D. Gordenin,et al. Base Damage within Single-Strand DNA Underlies In Vivo Hypermutability Induced by a Ubiquitous Environmental Agent , 2012, PLoS genetics.
[18] A. Børresen-Dale,et al. Mutational Processes Molding the Genomes of 21 Breast Cancers , 2012, Cell.
[19] Steven A. Roberts,et al. An APOBEC cytidine deaminase mutagenesis pattern is widespread in human cancers , 2013, Nature Genetics.
[20] L. Symington,et al. Break-induced replication occurs by conservative DNA synthesis , 2013, Proceedings of the National Academy of Sciences.
[21] David T. W. Jones,et al. Signatures of mutational processes in human cancer , 2013, Nature.
[22] Anna Malkova,et al. Migrating bubble during break-induced replication drives conservative DNA synthesis , 2013, Nature.
[23] Igor B. Rogozin,et al. Genome-Wide Mutation Avalanches Induced in Diploid Yeast Cells by a Base Analog or an APOBEC Deaminase , 2013, PLoS genetics.
[24] A. Malkova,et al. Break-induced replication: functions and molecular mechanism. , 2013, Current opinion in genetics & development.
[25] Anna Malkova,et al. Pif1 helicase and Polδ promote recombination-coupled DNA synthesis via bubble migration , 2013, Nature.
[26] N. A. Temiz,et al. APOBEC3B is an enzymatic source of mutation in breast cancer , 2013, Nature.
[27] M. Stratton,et al. DNA deaminases induce break-associated mutation showers with implication of APOBEC3B and 3A in breast cancer kataegis , 2013, eLife.
[28] S. Gabriel,et al. Somatic rearrangements across cancer reveal classes of samples with distinct patterns of DNA breakage and rearrangement-induced hypermutability , 2012, Genome research.
[29] A. Malkova,et al. Cascades of Genetic Instability Resulting from Compromised Break-Induced Replication , 2014, PLoS Genetics.
[30] George Iliakis,et al. Break-Induced Replication Repair of Damaged Forks Induces Genomic Duplications in Human Cells , 2014, Science.