Hairpin coding end opening is mediated by RAG1 and RAG2 proteins.
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M. Nussenzweig | P. Cortés | S. Lewis | J. Mansilla-Soto | Greg Brown | S M Lewis | M. Sadofsky | E Besmer | J Mansilla-Soto | S Cassard | D J Sawchuk | G Brown | M Sadofsky | M C Nussenzweig | P Cortes | S. Cassard | D. J. Sawchuk | G. Brown | E. Besmer | P. Cortes | Dennis J. Sawchuk
[1] M. Nussenzweig,et al. Requirement for Ku80 in growth and immunoglobulin V(D)J recombination , 1996, Nature.
[2] S. Nagata,et al. pEF-BOS, a powerful mammalian expression vector. , 1990, Nucleic acids research.
[3] P. Jeggo,et al. X-ray sensitive mutants of Chinese hamster ovary cells defective in double-strand break rejoining. , 1984, Mutation research.
[4] M. Oshimura,et al. Loss of the catalytic subunit of the DNA-dependent protein kinase in DNA double-strand-break-repair mutant mammalian cells. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[5] D. Schatz,et al. RAG-1 and RAG-2, adjacent genes that synergistically activate V(D)J recombination. , 1990, Science.
[6] N. Kleckner,et al. Tn10 Transposition via a DNA Hairpin Intermediate , 1998, Cell.
[7] T. Lindahl,et al. Repair and Recombination: How to make ends meet , 1995, Current Biology.
[8] M. Schlissel,et al. Structure of Nonhairpin Coding-End DNA Breaks in Cells Undergoing V(D)J Recombination , 1998, Molecular and Cellular Biology.
[9] M. Gellert,et al. A Stable RAG1–RAG2–DNA Complex That Is Active in V(D)J Cleavage , 1997, Cell.
[10] D. Baltimore,et al. Dispensable sequence motifs in the RAG-1 and RAG-2 genes for plasmid V(D)J recombination. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[11] K. Mizuuchi. Polynucleotidyl transfer reactions in site‐specific DNA recombination , 1997, Genes to cells : devoted to molecular & cellular mechanisms.
[12] B. Nadel,et al. Nucleotide deletion and P addition in V(D)J recombination: a determinant role of the coding-end sequence , 1997, Molecular and cellular biology.
[13] J. Menetski,et al. V(D)J recombination: Broken DNA molecules with covalently sealed (hairpin) coding ends in scid mouse thymocytes , 1992, Cell.
[14] J E Hesse,et al. Definition of a core region of RAG-2 that is functional in V(D)J recombination. , 1994, Nucleic acids research.
[15] D. Roth,et al. Hairpin opening by single-strand-specific nucleases. , 1995, Nucleic Acids Research.
[16] N. Kleckner,et al. Kinetic and structural analysis of a cleaved donor intermediate and a strand transfer intermediate in Tn10 transposition , 1991, Cell.
[17] D. Baltimore,et al. Localization, interaction, and RNA binding properties of the V(D)J recombination-activating proteins RAG1 and RAG2. , 1995, Immunity.
[18] H. Lu,et al. Ku autoantigen is the regulatory component of a template-associated protein kinase that phosphorylates RNA polymerase II. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[19] M. Bogue,et al. Mechanism of V(D)J recombination. , 1996, Cancer surveys.
[20] Susumu Tonegawa,et al. Junctional sequences of T cell receptor γδ genes: Implications for γδ T cell lineages and for a novel intermediate of V-(D)-J joining , 1989, Cell.
[21] M. Gellert,et al. Assembly of a 12/23 paired signal complex: a critical control point in V(D)J recombination. , 1998, Molecular cell.
[22] D. V. van Gent,et al. Rejoining of DNA by the RAG1 and RAG2 proteins. , 1998, Science.
[23] K. Mizuuchi,et al. Inversion of the phosphate chirality at the target site of Mu DNA strand transfer: Evidence for a one-step transesterification mechanism , 1991, Cell.
[24] V Aidinis,et al. The Effect of Me2+ Cofactors at the Initial Stages of V(D)J Recombination* , 1998, The Journal of Biological Chemistry.
[25] M. Nussenzweig,et al. V(D)J Recombination: Modulation of RAG1 and RAG2 Cleavage Activity on 12/23 Substrates by Whole Cell Extract and DNA-bending Proteins , 1997, The Journal of experimental medicine.
[26] David G. Schatz,et al. Transposition mediated by RAG1 and RAG2 and its implications for the evolution of the immune system , 1998, Nature.
[27] M. Schlissel,et al. Double-strand signal sequence breaks in V(D)J recombination are blunt, 5'-phosphorylated, RAG-dependent, and cell cycle regulated. , 1993, Genes & development.
[28] Gillian E. Wu,et al. The Origins of V(D)J Recombination , 1997, Cell.
[29] F. Alt,et al. Growth retardation and leaky SCID phenotype of Ku70-deficient mice. , 1997, Immunity.
[30] Chiyu Wang,et al. V(D)J recombination in Ku86-deficient mice: distinct effects on coding, signal, and hybrid joint formation. , 1997, Immunity.
[31] M. Lieber. The mechanism of V(D)J recombination: A balance of diversity, specificity, and stability , 1992, Cell.
[32] D. Schatz,et al. RAG1 and RAG2 Form a Stable Postcleavage Synaptic Complex with DNA Containing Signal Ends in V(D)J Recombination , 1997, Cell.
[33] Sandro Santagata,et al. The Homeodomain Region of Rag-1 Reveals the Parallel Mechanisms of Bacterial and V(D)J Recombination , 1996, Cell.
[34] M. Gellert,et al. DNA Transposition by the RAG1 and RAG2 Proteins A Possible Source of Oncogenic Translocations , 1998, Cell.
[35] Molly A Bogue,et al. Ku86-Deficient Mice Exhibit Severe Combined Immunodeficiency and Defective Processing of V(D)J Recombination Intermediates , 1996, Cell.
[36] S. Tonegawa. Somatic generation of antibody diversity , 1983, Nature.
[37] C. Thompson,et al. New insights into V(D)J recombination and its role in the evolution of the immune system. , 1995, Immunity.
[38] Christina A. Cuomo,et al. Cleavage at a V(D)J recombination signal requires only RAG1 and RAG2 proteins and occurs in two steps , 1995, Cell.
[39] S. Jackson,et al. The DNA-dependent protein kinase: Requirement for DNA ends and association with Ku antigen , 1993, Cell.
[40] D. Weaver,et al. From RAGs to stitches , 1997, Nature.
[41] Hitoshi Sakano,et al. Footprint Analysis of the RAG Protein Recombination Signal Sequence Complex for V(D)J Type Recombination , 1998, Molecular and Cellular Biology.
[42] M. Lieber,et al. V(D)J recombination in mammalian cell mutants defective in DNA double-strand break repair , 1993, Molecular and cellular biology.
[43] J. Menetski,et al. V(D)J recombination in mouse thymocytes: Double-strand breaks near T cell receptor δ rearrangement signals , 1992, Cell.
[44] Dale A Ramsden,et al. The RAG1 and RAG2 Proteins Establish the 12/23 Rule in V(D)J Recombination , 1996, Cell.
[45] S. Lewis,et al. The mechanism of V(D)J joining: lessons from molecular, immunological, and comparative analyses. , 1994, Advances in immunology.
[46] T. Komori,et al. Lack of N regions in antigen receptor variable region genes of TdT-deficient lymphocytes. , 1993, Science.
[47] G. Chu,et al. The end-joining reaction in V(D)J recombination. , 1997, Seminars in immunology.
[48] S. Jackson,et al. Mammalian DNA double-strand break repair protein XRCC4 interacts with DNA ligase IV , 1997, Current Biology.
[49] Robert Craigie,et al. HIV-1 DNA integration: Mechanism of viral DNA cleavage and DNA strand transfer , 1991, Cell.
[50] C. Thompson,et al. Chicken IgL gene rearrangement involves deletion of a circular episome and addition of single nonrandom nucleotides to both coding segments , 1989, Cell.
[51] M. Gellert,et al. Expression and V(D)J recombination activity of mutated RAG-1 proteins. , 1993, Nucleic acids research.
[52] P. O’Farrell,et al. Qualifying for the license to replicate , 1995, Cell.
[53] S. Desiderio,et al. RAG-1 and RAG-2-dependent assembly of functional complexes with V(D)J recombination substrates in solution , 1997, Molecular and Cellular Biology.
[54] S. Lewis,et al. P Nucleotides in V(D)J Recombination: A Fine-Structure Analysis , 1993, Molecular and cellular biology.
[55] S. Lewis,et al. P nucleotide insertions and the resolution of hairpin DNA structures in mammalian cells. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[56] D. Ramsden,et al. Cell-free V(D)J recombination , 1997, Nature.
[57] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[58] T. Hunt,et al. Double‐stranded DNA induces the phosphorylation of several proteins including the 90 000 mol. wt. heat‐shock protein in animal cell extracts. , 1985, The EMBO journal.
[59] G. Chu,et al. A DNA end-binding factor involved in double-strand break repair and V(D)J recombination , 1994, Molecular and cellular biology.
[60] M. Bosma,et al. Abnormal deletions in the T-cell receptor delta locus of mouse thymocytes , 1994, Molecular and cellular biology.
[61] N. Doyen,et al. Three lymphoid-specific factors account for all junctional diversity characteristic of somatic assembly of T-cell receptor and immunoglobulin genes. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[62] D. Schatz,et al. A link between double-strand break-related repair and V(D)J recombination: the scid mutation. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[63] F. Alt,et al. Impairment of V(D)J recombination in double-strand break repair mutants. , 1993, Science.
[64] Eugenia Spanopoulou,et al. RAG1 Mediates Signal Sequence Recognition and Recruitment of RAG2 in V(D)J Recombination , 1996, Cell.
[65] G. A. van der Marel,et al. Site-specific hydrolysis and alcoholysis of human immunodeficiency virus DNA termini mediated by the viral integrase protein. , 1991, Nucleic acids research.
[66] David G. Schatz,et al. Initiation of V(D)J recombination in vitro obeying the 12/23 rule , 1996, Nature.
[67] M. Oettinger,et al. DNA-dependent kinase (p350) as a candidate gene for the murine SCID defect , 1995, Science.
[68] C. Benoist,et al. Mice lacking TdT: mature animals with an immature lymphocyte repertoire. , 1993, Science.
[69] D. Schatz,et al. Identification of V(D)J recombination coding end intermediates in normal thymocytes. , 1997, Journal of molecular biology.
[70] D. V. van Gent,et al. Similarities Between Initiation of V(D)J Recombination and Retroviral Integration , 1996, Science.
[71] F. Alt,et al. The XRCC4 gene encodes a novel protein involved in DNA double-strand break repair and V(D)J recombination , 1995, Cell.
[72] Hitoshi Sakano,et al. Sequences at the somatic recombination sites of immunoglobulin light-chain genes , 1979, Nature.
[73] F. Alt,et al. Defective DNA-dependent protein kinase activity is linked to V(D)J recombination and DNA repair defects associated with the murine scid mutation , 1995, Cell.
[74] D. Ramsden,et al. Formation and resolution of double-strand break intermediates in V(D)J rearrangement. , 1995, Genes & development.
[75] F. Alt,et al. Ku80: product of the XRCC5 gene and its role in DNA repair and V(D)J recombination. , 1994, Science.
[76] P. Jeggo,et al. DNA double-strand break repair and V(D)J recombination: involvement of DNA-PK. , 1995, Trends in biochemical sciences.
[77] S. Desiderio,et al. V(D)J recombination signal recognition: distinct, overlapping DNA-protein contacts in complexes containing RAG1 with and without RAG2. , 1998, Immunity.
[78] W. Dynan,et al. Interaction of Ku protein and DNA-dependent protein kinase catalytic subunit with nucleic acids. , 1998, Nucleic acids research.
[79] D. Ramsden,et al. Initiation of V(D)J recombination in a cell-free system , 1995, Cell.
[80] M. Nussenzweig,et al. V(D)J recombination: in vitro coding joint formation , 1997, Molecular and cellular biology.
[81] D. Roth,et al. The 12/23 rule is enforced at the cleavage step of V(D)J recombination in vivo , 1996, Genes to cells : devoted to molecular & cellular mechanisms.
[82] D. V. van Gent,et al. Stimulation of V(D)J cleavage by high mobility group proteins , 1997, The EMBO journal.
[83] D. Baltimore,et al. In vitro V(D)J recombination: signal joint formation. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[84] M. Lieber,et al. Activity of DNA ligase IV stimulated by complex formation with XRCC4 protein in mammalian cells , 1997, Nature.
[85] S. Jackson,et al. The DNA-dependent protein kinase , 1999 .
[86] C. Cuomo,et al. Analysis of regions of RAG-2 important for V(D)J recombination. , 1994, Nucleic acids research.
[87] D. Schatz,et al. Coding joint formation in a cell-free V(D)J recombination system. , 1997, Immunity.