Meganucleases and DNA double-strand break-induced recombination: perspectives for gene therapy.
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[1] J. Haber,et al. Characterization of double-strand break-induced recombination: homology requirements and single-stranded DNA formation , 1992, Molecular and cellular biology.
[2] Patrick Chames,et al. In vivo selection of engineered homing endonucleases using double-strand break induced homologous recombination , 2005, Nucleic acids research.
[3] A. Janulaitis,et al. Engineering of restriction endonucleases: using methylation activity of the bifunctional endonuclease Eco57I to select the mutant with a novel sequence specificity. , 2003, Journal of molecular biology.
[4] C. von Kalle,et al. LMO2 and gene therapy for severe combined immunodeficiency. , 2004, The New England journal of medicine.
[5] V. Wahn,et al. Diversity, functionality, and stability of the T cell repertoire derived in vivo from a single human T cell precursor. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[6] Jay H. Konieczka,et al. Stepwise manipulation of DNA specificity in Flp recombinase: progressively adapting Flp to individual and combinatorial mutations in its target site. , 2003, Journal of molecular biology.
[7] K Morikawa,et al. Crystal structure of an archaeal intein-encoded homing endonuclease PI-PfuI. , 2000, Journal of molecular biology.
[8] A. Levy,et al. High-frequency gene targeting in Arabidopsis plants expressing the yeast RAD54 gene. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[9] M. Reinders,et al. Gene therapy: Is IL2RG oncogenic in T-cell development? , 2006, Nature.
[10] B. Dujon,et al. Two different but related mechanisms are used in plants for the repair of genomic double-strand breaks by homologous recombination. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[11] J. Hoeijmakers,et al. Nucleotide excision repair and human syndromes. , 2000, Carcinogenesis.
[12] Yuko Yamaguchi-Iwai,et al. Reduced X-Ray Resistance and Homologous Recombination Frequencies in a RAD54−/− Mutant of the Chicken DT40 Cell Line , 1997, Cell.
[13] M. Porteus,et al. Mammalian gene targeting with designed zinc finger nucleases. , 2006, Molecular therapy : the journal of the American Society of Gene Therapy.
[14] B. Dujon,et al. Induction of homologous recombination in mammalian chromosomes by using the I-SceI system of Saccharomyces cerevisiae , 1995, Molecular and cellular biology.
[15] Cameron S. Osborne,et al. LMO2-Associated Clonal T Cell Proliferation in Two Patients after Gene Therapy for SCID-X1 , 2003, Science.
[16] J. Strathern,et al. A site-specific endonuclease essential for mating-type switching in Saccharomyces cerevisiae , 1983, Cell.
[17] Sophie Leduc,et al. Efficient in toto targeted recombination in mouse liver by meganuclease‐induced double‐strand break , 2006, The journal of gene medicine.
[18] J W Szostak,et al. Yeast transformation: a model system for the study of recombination. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[19] A Klug,et al. Synergy between adjacent zinc fingers in sequence-specific DNA recognition. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[20] K. Kraemer,et al. Xeroderma Pigmentosum: Cutaneous, Ocular, and Neurologic Abnormalities in 830 Published Cases , 1987 .
[21] Roeder Gs. Meiotic chromosomes: it takes two to tango , 1997 .
[22] J W Szostak,et al. Genetic applications of yeast transformation with linear and gapped plasmids. , 1983, Methods in enzymology.
[23] R. Monnat,et al. Genetic analysis of the Chlamydomonas reinhardtii I-CreI mobile intron homing system in Escherichia coli. , 1997, Genetics.
[24] Christine Richardson,et al. Frequent chromosomal translocations induced by DNA double-strand breaks , 2000, Nature.
[25] R. Weisberg,et al. Identifying determinants of recombination specificity: construction and characterization of mutant bacteriophage integrases. , 1995, Journal of molecular biology.
[26] M. Jasin,et al. Loss of heterozygosity induced by a chromosomal double-strand break. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[27] S. Halford,et al. Protein assembly and DNA looping by the FokI restriction endonuclease , 2006, Nucleic acids research.
[28] A. Porter,et al. Differential effects of Rad52p overexpression on gene targeting and extrachromosomal homologous recombination in a human cell line. , 2002, Nucleic acids research.
[29] A Klug,et al. Toward a code for the interactions of zinc fingers with DNA: selection of randomized fingers displayed on phage. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[30] Jean-Marie Buerstedde,et al. Increased ratio of targeted to random integration after transfection of chicken B cell lines , 1991, Cell.
[31] P. Borst,et al. Targeting of exogenous DNA into Trypanosoma brucei requires a high degree of homology between donor and target DNA. , 1996, Molecular and biochemical parasitology.
[32] S. Lambert,et al. Characterization of mammalian RAD51 double strand break repair using non‐lethal dominant‐negative forms , 2000, The EMBO journal.
[33] P. Duchateau,et al. Engineering of large numbers of highly specific homing endonucleases that induce recombination on novel DNA targets. , 2006, Journal of molecular biology.
[34] L. Hartwell,et al. Sister chromatids are preferred over homologs as substrates for recombinational repair in Saccharomyces cerevisiae. , 1992, Genetics.
[35] D. Schaefer,et al. Efficient gene targeting in the moss Physcomitrella patens. , 1997, The Plant journal : for cell and molecular biology.
[36] A. Jeltsch,et al. Protein engineering of the restriction endonuclease EcoRV--structure-guided design of enzyme variants that recognize the base pairs flanking the recognition site. , 1998, European journal of biochemistry.
[37] L. Thompson,et al. XRCC3 promotes homology-directed repair of DNA damage in mammalian cells. , 1999, Genes & development.
[38] B. Stoddard,et al. Isolation and characterization of new homing endonuclease specificities at individual target site positions. , 2004, Journal of molecular biology.
[39] Andrew D. Miller,et al. Site-directed genome modification: derivatives of DNA-modifying enzymes as targeting tools. , 2005, Trends in biotechnology.
[40] Barry L. Stoddard,et al. DNA binding and cleavage by the nuclear intron-encoded homing endonuclease I-PpoI , 1998, Nature.
[41] K. Thomas,et al. Introduction of a lacZ reporter gene into the mouse int-2 locus by homologous recombination. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[42] B. Dujon,et al. Homologous recombination in plant cells is enhanced by in vivo induction of double strand breaks into DNA by a site-specific endonuclease. , 1993, Nucleic acids research.
[43] A. Logan,et al. Advances in lentiviral vector design for gene-modification of hematopoietic stem cells. , 2002, Current opinion in biotechnology.
[44] M. V. Filatov,et al. Overexpression of bacterial RecA protein stimulates homologous recombination in somatic mammalian cells. , 2000, Mutation research.
[45] B. Stoddard,et al. Design, activity, and structure of a highly specific artificial endonuclease. , 2002, Molecular cell.
[46] Markus Landthaler,et al. DNA binding and cleavage by the HNH homing endonuclease I-HmuI. , 2004, Journal of molecular biology.
[47] N. Pavletich,et al. Zinc finger-DNA recognition: crystal structure of a Zif268-DNA complex at 2.1 A , 1991, Science.
[48] N. Nomura,et al. Structure of a hyperthermophilic archaeal homing endonuclease, I-Tsp061I: contribution of cross-domain polar networks to thermostability. , 2007, Journal of molecular biology.
[49] M. Jasin,et al. Double-strand break repair by interchromosomal recombination: suppression of chromosomal translocations. , 1998, Genes & development.
[50] B. Stoddard,et al. The structure of I-Crel, a Group I intron-encoded homing endonuclease , 1997, Nature Structural Biology.
[51] Sophie Leduc,et al. Factors affecting double-strand break-induced homologous recombination in mammalian cells. , 2005, BioTechniques.
[52] E. Chen,et al. A 24-base-pair DNA sequence from the MAT locus stimulates intergenic recombination in yeast. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[53] Dana Carroll,et al. Gene targeting using zinc finger nucleases , 2005, Nature Biotechnology.
[54] Dana Carroll,et al. Targeted chromosomal cleavage and mutagenesis in Drosophila using zinc-finger nucleases. , 2002, Genetics.
[55] David W. Melton,et al. Targetted correction of a mutant HPRT gene in mouse embryonic stem cells , 1987, Nature.
[56] S Chandrasegaran,et al. Hybrid restriction enzymes: zinc finger fusions to Fok I cleavage domain. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[57] J. Hoeijmakers,et al. Chromosomal stability and the DNA double-stranded break connection , 2001, Nature Reviews Genetics.
[58] Mario R. Capecchi,et al. Targeted disruption of the murine int-1 proto-oncogene resulting in severe abnormalities in midbrain and cerebellar development , 1990, Nature.
[59] Jeffrey C. Miller,et al. Highly efficient endogenous human gene correction using designed zinc-finger nucleases , 2005, Nature.
[60] A. Porter,et al. Gene targeting is enhanced in human cells overexpressing hRAD51 , 1999, Gene Therapy.
[61] G. Fink,et al. Transformation of yeast. , 1978, Proceedings of the National Academy of Sciences of the United States of America.
[62] David A Wright,et al. High-frequency homologous recombination in plants mediated by zinc-finger nucleases. , 2005, The Plant journal : for cell and molecular biology.
[63] M. Chiurazzi,et al. Enhancement of somatic intrachromosomal homologous recombination in Arabidopsis by the HO endonuclease. , 1996, The Plant cell.
[64] Jack W. Szostak,et al. The double-strand-break repair model for recombination , 1983, Cell.
[65] G. Rubin,et al. Targeted mutagenesis by homologous recombination in D. melanogaster. , 2002, Genes & development.
[66] Dana Carroll,et al. Stimulation of Homologous Recombination through Targeted Cleavage by Chimeric Nucleases , 2001, Molecular and Cellular Biology.
[67] D J Segal,et al. Development of Zinc Finger Domains for Recognition of the 5′-ANN-3′ Family of DNA Sequences and Their Use in the Construction of Artificial Transcription Factors* , 2001, The Journal of Biological Chemistry.
[68] P. Sung,et al. DNA strand exchange mediated by a RAD51-ssDNA nucleoprotein filament with polarity opposite to that of RecA , 1995, Cell.
[69] Jac A. Nickoloff,et al. Gene Conversion Tracts from Double-Strand Break Repair in Mammalian Cells , 1998, Molecular and Cellular Biology.
[70] B. Stoddard,et al. Homing endonucleases: structural and functional insight into the catalysts of intron/intein mobility. , 2001, Nucleic acids research.
[71] B. Stoddard,et al. DNA recognition and cleavage by the LAGLIDADG homing endonuclease I-CreI. , 1998, Molecular cell.
[72] D. Baker,et al. Computational redesign of endonuclease DNA binding and cleavage specificity , 2006, Nature.
[73] Roberto A Chica,et al. Semi-rational approaches to engineering enzyme activity: combining the benefits of directed evolution and rational design. , 2005, Current opinion in biotechnology.
[74] R. Hawley. Progress toward vector design for hematopoietic stem cell gene therapy. , 2001, Current gene therapy.
[75] Dana Carroll,et al. Enhancing Gene Targeting with Designed Zinc Finger Nucleases , 2003, Science.
[76] J. Haber,et al. Multiple Pathways of Recombination Induced by Double-Strand Breaks in Saccharomyces cerevisiae , 1999, Microbiology and Molecular Biology Reviews.
[77] A. Klug,et al. A rapid, generally applicable method to engineer zinc fingers illustrated by targeting the HIV-1 promoter , 2001, Nature Biotechnology.
[78] B. Stoddard,et al. Structural and biochemical analyses of DNA and RNA binding by a bifunctional homing endonuclease and group I intron splicing factor. , 2003, Genes & development.
[79] P. Rouet,et al. Introduction of double-strand breaks into the genome of mouse cells by expression of a rare-cutting endonuclease. , 1994, Molecular and cellular biology.
[80] M. Darmon,et al. Epidermal morphogenesis and induction of the 67 kD keratin polypeptide by culture of human keratinocytes at the liquid-air interface. , 1985, Experimental cell research.
[81] Stephen L. Gasior,et al. Assembly of RecA-like recombinases: Distinct roles for mediator proteins in mitosis and meiosis , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[82] Toni Cathomen,et al. Custom Zinc-Finger Nucleases for Use in Human Cells , 2005 .
[83] C. Pabo,et al. Zif268 protein-DNA complex refined at 1.6 A: a model system for understanding zinc finger-DNA interactions. , 1996, Structure.
[84] Christine Kinnon,et al. Mutations in TNFRSF13B Encoding TACI Are Associated With Common Variable Immunodeficiency in Humans , 2006, Pediatrics.
[85] M. Bibikova,et al. Efficient Gene Targeting in Drosophila With Zinc-Finger Nucleases , 2006, Genetics.
[86] A. Sarasin,et al. The genetics of the hereditary xeroderma pigmentosum syndrome. , 2002, Biochimie.
[87] M. Jasin,et al. Analysis of Gene Targeting and Intrachromosomal Homologous Recombination Stimulated by Genomic Double-Strand Breaks in Mouse Embryonic Stem Cells , 1998, Molecular and Cellular Biology.
[88] M. Emond,et al. I-PpoI and I-CreI homing site sequence degeneracy determined by random mutagenesis and sequential in vitro enrichment. , 1998, Journal of molecular biology.
[89] P. Sung. Catalysis of ATP-dependent homologous DNA pairing and strand exchange by yeast RAD51 protein. , 1994, Science.
[90] A. Pingoud,et al. Chimeras of the Homing Endonuclease PI‐SceI and the Homologous Candida tropicalis Intein: A Study to Explore the Possibility of Exchanging DNA‐Binding Modules to Obtain Highly Specific Endonucleases with Altered Specificity , 2004, Chembiochem : a European journal of chemical biology.
[91] A. Nienhuis,et al. Genotoxicity of retroviral integration in hematopoietic cells. , 2006, Molecular therapy : the journal of the American Society of Gene Therapy.
[92] Y. Yamaguchi-Iwai,et al. Homologous recombination and non‐homologous end‐joining pathways of DNA double‐strand break repair have overlapping roles in the maintenance of chromosomal integrity in vertebrate cells , 1998, The EMBO journal.
[93] D. Schaefer. Gene targeting in Physcomitrella patens. , 2001, Current opinion in plant biology.
[94] C. Pabo,et al. Zinc finger phage: affinity selection of fingers with new DNA-binding specificities. , 1994, Science.
[95] T. Doetschman,et al. Germ-line transmission of a planned alteration made in a hypoxanthine phosphoribosyltransferase gene by homologous recombination in embryonic stem cells. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[96] M. Zoppè,et al. Potentiation of gene targeting in human cells by expression of Saccharomyces cerevisiae Rad52 , 2005, Nucleic acids research.
[97] O. Smithies,et al. Altering mice by homologous recombination using embryonic stem cells. , 1994, The Journal of biological chemistry.
[98] P. Rouet,et al. Double-strand breaks at the target locus stimulate gene targeting in embryonic stem cells. , 1995, Nucleic acids research.
[99] S Chandrasegaran,et al. Requirements for double-strand cleavage by chimeric restriction enzymes with zinc finger DNA-recognition domains. , 2000, Nucleic acids research.
[100] Monique Turmel,et al. Flexible DNA target site recognition by divergent homing endonuclease isoschizomers I-CreI and I-MsoI. , 2003, Journal of molecular biology.
[101] M. Capecchi,et al. Site-directed mutagenesis by gene targeting in mouse embryo-derived stem cells , 1987, Cell.
[102] J. Hoeijmakers,et al. Genetic correction of DNA repair-deficient/cancer-prone xeroderma pigmentosum group C keratinocytes. , 2003, Human gene therapy.
[103] B. Stoddard,et al. The structure of I-CeuI homing endonuclease: Evolving asymmetric DNA recognition from a symmetric protein scaffold. , 2006, Structure.
[104] Bernard Dujon,et al. An intron-encoded protein is active in a gene conversion process that spreads an intron into a mitochondrial gene , 1985, Cell.
[105] Aaron Klug,et al. In vivo repression by a site-specific DNA-binding protein designed against an oncogenic sequence , 1994, Nature.
[106] Carmen M. Moure,et al. Assessing the plasticity of DNA target site recognition of the PI-SceI homing endonuclease using a bacterial two-hybrid selection system. , 2003, Journal of molecular biology.
[107] David R. Liu,et al. Directed evolution and substrate specificity profile of homing endonuclease I-SceI. , 2006, Journal of the American Chemical Society.
[108] Yang Du,et al. Correction of X-linked chronic granulomatous disease by gene therapy, augmented by insertional activation of MDS1-EVI1, PRDM16 or SETBP1 , 2006, Nature Medicine.
[109] A. Fischer,et al. Severe combined immunodeficiency. A model disease for molecular immunology and therapy , 2005, Immunological reviews.
[110] A. Jeltsch,et al. On the possibilities and limitations of rational protein design to expand the specificity of restriction enzymes: a case study employing EcoRV as the target. , 2000, Protein engineering.
[111] K. Murphy,et al. Use of Bacteriophage λ Recombination Functions To Promote Gene Replacement in Escherichia coli , 1998, Journal of bacteriology.
[112] M. Brenneman,et al. Repair of site-specific double-strand breaks in a mammalian chromosome by homologous and illegitimate recombination , 1997, Molecular and cellular biology.
[113] Carl O. Pabo,et al. Drug discovery with engineered zinc-finger proteins , 2003, Nature Reviews Drug Discovery.
[114] M. Jasin,et al. Homology-directed repair is a major double-strand break repair pathway in mammalian cells. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[115] A. Zanghellini,et al. A novel engineered meganuclease induces homologous recombination in yeast and mammalian cells. , 2003, Nucleic acids research.
[116] R. Rothstein. One-step gene disruption in yeast. , 1983, Methods in enzymology.
[117] S Chandrasegaran,et al. Functional domains in Fok I restriction endonuclease. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[118] P. Duchateau,et al. A combinatorial approach to create artificial homing endonucleases cleaving chosen sequences , 2006, Nucleic acids research.
[119] Y. Rong,et al. A targeted gene knockout in Drosophila. , 2001, Genetics.
[120] Alfred Pingoud,et al. From monomeric to homodimeric endonucleases and back: engineering novel specificity of LAGLIDADG enzymes. , 2006, Journal of molecular biology.
[121] Barry L. Stoddard,et al. Homing endonuclease I-CreI derivatives with novel DNA target specificities , 2006, Nucleic acids research.
[122] N. Ellis,et al. Ku DNA end-binding protein modulates homologous repair of double-strand breaks in mammalian cells. , 2001, Genes & development.
[123] J. Haber. In vivo biochemistry: Physical monitoring of recombination induced by site‐specific endonucleases , 1995, BioEssays : news and reviews in molecular, cellular and developmental biology.
[124] A. Mortellaro,et al. Correction of ADA-SCID by Stem Cell Gene Therapy Combined with Nonmyeloablative Conditioning , 2002, Science.
[125] Srinivasan Chandrasegaran,et al. Zinc finger nucleases: custom-designed molecular scissors for genome engineering of plant and mammalian cells , 2005, Nucleic acids research.
[126] A Klug,et al. Selection of DNA binding sites for zinc fingers using rationally randomized DNA reveals coded interactions. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[127] J. Haber,et al. Intermediates of recombination during mating type switching in Saccharomyces cerevisiae. , 1990, The EMBO journal.
[128] Peter G Schultz,et al. Directed evolution of the site specificity of Cre recombinase , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[129] N. Sternberg,et al. Homologous recombination in mouse L cells. , 1984, Cold Spring Harbor symposia on quantitative biology.
[130] J. Szostak,et al. Extensive 3′-overhanging, single-stranded DNA associated with the meiosis-specific double-strand breaks at the ARG4 recombination initiation site , 1991, Cell.
[131] J. Ellis. Silencing and variegation of gammaretrovirus and lentivirus vectors. , 2005, Human gene therapy.
[132] O. Smithies. Forty years with homologous recombination , 2001, Nature Medicine.
[133] Frank Buchholz,et al. Alteration of Cre recombinase site specificity by substrate-linked protein evolution , 2001, Nature Biotechnology.
[134] Mario R. Capecchi,et al. Disruption of the proto-oncogene int-2 in mouse embryo-derived stem cells: a general strategy for targeting mutations to non-selectable genes , 1988, Nature.
[135] B. Koller,et al. Inactivating the beta 2-microglobulin locus in mouse embryonic stem cells by homologous recombination. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[136] F. Quiocho,et al. Crystal structure of the intein homing endonuclease PI-SceI bound to its recognition sequence , 2002, Nature Structural Biology.
[137] A. Schambach,et al. Gene therapy: X-SCID transgene leukaemogenicity , 2006, Nature.
[138] Dana Carroll,et al. Targeted mutagenesis using zinc-finger nucleases in Arabidopsis. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[139] C. Pabo,et al. Design and selection of novel Cys2His2 zinc finger proteins. , 2001, Annual review of biochemistry.
[140] F. Blattner,et al. Markerless gene replacement in Escherichia coli stimulated by a double-strand break in the chromosome. , 1999, Nucleic acids research.
[141] Y. Rong,et al. Gene targeting by homologous recombination in Drosophila. , 2000, Science.
[142] Y. Rong,et al. The homologous chromosome is an effective template for the repair of mitotic DNA double-strand breaks in Drosophila. , 2003, Genetics.
[143] Kai Rothkamm,et al. Pathways of DNA Double-Strand Break Repair during the Mammalian Cell Cycle , 2003, Molecular and Cellular Biology.
[144] A. Jeltsch,et al. Protein engineering of the restriction endonuclease EcoRV: replacement of an amino acid residue in the DNA binding site leads to an altered selectivity towards unmodified and modified substrates. , 1994, Biochimica et biophysica acta.
[145] J. Cleaver. Cancer in xeroderma pigmentosum and related disorders of DNA repair , 2005, Nature Reviews Cancer.
[146] J. Haber. Mating-type gene switching in Saccharomyces cerevisiae. , 1992, Trends in genetics : TIG.
[147] S. Ergün. Resurfacing the Dorsum of the Hand in a Patient With Xeroderma Pigmentosum , 2003 .
[148] A. Poteete. What makes the bacteriophage λ Red system useful for genetic engineering: molecular mechanism and biological function , 2001 .
[149] B. Dujon,et al. Nested chromosomal fragmentation in yeast using the meganuclease I-Sce I: a new method for physical mapping of eukaryotic genomes. , 1992, Nucleic acids research.
[150] A. Fischer,et al. Gene therapy for severe combined immunodeficiency. , 2005, Annual review of medicine.
[151] Andrew D. Miller,et al. Site-directed genome modification: nucleic acid and protein modules for targeted integration and gene correction. , 2005, Trends in biotechnology.
[152] J. Haber,et al. Gene targeting by linear duplex DNA frequently occurs by assimilation of a single strand that is subject to preferential mismatch correction. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[153] G. Aslan,et al. New tumor formation on split-thickness skin grafted areas in xeroderma pigmentosum. , 1999, Annals of plastic surgery.
[154] S. E. Barker,et al. Effective gene therapy with nonintegrating lentiviral vectors , 2006, Nature Medicine.
[155] Shuang-yong Xu,et al. Directed evolution of restriction endonuclease BstYI to achieve increased substrate specificity. , 2002, Journal of molecular biology.
[156] K. Turksen,et al. Isolation and characterization , 2006 .
[157] B. Dujon,et al. Recognition and cleavage site of the intron-encoded omega transposase. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[158] David Baltimore,et al. Chimeric Nucleases Stimulate Gene Targeting in Human Cells , 2003, Science.
[159] M. Ouellette,et al. Targeted insertion of the neomycin phosphotransferase gene into the tubulin gene cluster of Trypanosoma brucei , 1990, Nature.
[160] H. Puchta,et al. Efficient Repair of Genomic Double-Strand Breaks by Homologous Recombination between Directly Repeated Sequences in the Plant Genome Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.001727. , 2002, The Plant Cell Online.
[161] Mario R. Capecchi,et al. Generating mice with targeted mutations , 2001, Nature Medicine.
[162] F. Quiocho,et al. The crystal structure of the gene targeting homing endonuclease I-SceI reveals the origins of its target site specificity. , 2003, Journal of molecular biology.
[163] R. Weisberg,et al. Recognition of core binding sites by bacteriophage integrases. , 1998, Journal of molecular biology.
[164] M. Belfort,et al. Crystal structure of the thermostable archaeal intron-encoded endonuclease I-DmoI. , 1999, Journal of molecular biology.