Structure of Nonhairpin Coding-End DNA Breaks in Cells Undergoing V(D)J Recombination
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[1] M. Nussenzweig,et al. V(D)J recombination: in vitro coding joint formation , 1997, Molecular and cellular biology.
[2] D. Schatz,et al. Coding joint formation in a cell-free V(D)J recombination system. , 1997, Immunity.
[3] D. Ramsden,et al. Cell-free V(D)J recombination , 1997, Nature.
[4] U. Storb,et al. The composition of coding joints formed in V(D)J recombination is strongly affected by the nucleotide sequence of the coding ends and their relationship to the recombination signal sequences , 1997, Molecular and cellular biology.
[5] 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.
[6] D. Schatz,et al. Identification of V(D)J recombination coding end intermediates in normal thymocytes. , 1997, Journal of molecular biology.
[7] M. Schlissel,et al. Changes in Locus-specific V(D)J Recombinase Activity Induced by Immunoglobulin Gene Products during B Cell Development , 1997, The Journal of experimental medicine.
[8] A. Shaffer,et al. In Vivo Occupancy of the κ Light Chain Enhancers in Primary Pro- and Pre-B Cells: A Model for κ Locus Activation , 1997 .
[9] M. Bogue,et al. Mechanism of V(D)J recombination. , 1996, Cancer surveys.
[10] D. V. van Gent,et al. Similarities Between Initiation of V(D)J Recombination and Retroviral Integration , 1996, Science.
[11] 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.
[12] B. Nadel,et al. Influence of coding-end sequence on coding-end processing in V(D)J recombination. , 1995, Journal of immunology.
[13] D. Roth,et al. Hairpin opening by single-strand-specific nucleases. , 1995, Nucleic Acids Research.
[14] D. Ramsden,et al. Formation and resolution of double-strand break intermediates in V(D)J rearrangement. , 1995, Genes & development.
[15] M. Connelly,et al. DNA-dependent protein kinase catalytic subunit: A relative of phosphatidylinositol 3-kinase and the ataxia telangiectasia gene product , 1995, Cell.
[16] 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.
[17] D. Ramsden,et al. Initiation of V(D)J recombination in a cell-free system , 1995, Cell.
[18] M. Oettinger,et al. DNA-dependent kinase (p350) as a candidate gene for the murine SCID defect , 1995, Science.
[19] B. Nadel,et al. Analysis of homology-directed recombination in VDJ junctions from cytoplasmic Ig- pre-B cells of newborn mice. , 1995, Journal of immunology.
[20] D. Roth,et al. Characterization of coding ends in thymocytes of scid mice: implications for the mechanism of V(D)J recombination. , 1995, Immunity.
[21] A. Feeney,et al. Limited junctional diversity in kappa light chains. Junctional sequences from CD43+B220+ early B cell progenitors resemble those from peripheral B cells. , 1994, Journal of immunology.
[22] N. Rosenberg,et al. An active v-abl protein tyrosine kinase blocks immunoglobulin light-chain gene rearrangement. , 1994, Genes & development.
[23] S. Lewis,et al. The mechanism of V(D)J joining: lessons from molecular, immunological, and comparative analyses. , 1994, Advances in immunology.
[24] 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.
[25] D. Roth,et al. Characterization of broken DNA molecules associated with V(D)J recombination. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[26] C. Benoist,et al. Mice lacking TdT: mature animals with an immature lymphocyte repertoire. , 1993, Science.
[27] M. Lieber,et al. Extent to which homology can constrain coding exon junctional diversity in V(D)J recombination , 1993, Nature.
[28] J. Menetski,et al. V(D)J recombination: Broken DNA molecules with covalently sealed (hairpin) coding ends in scid mouse thymocytes , 1992, Cell.
[29] M. Lieber. The mechanism of V(D)J recombination: A balance of diversity, specificity, and stability , 1992, Cell.
[30] Z. Hall,et al. How many agrins does it take to make a synapse? , 1992, Cell.
[31] J. Menetski,et al. V(D)J recombination in mouse thymocytes: Double-strand breaks near T cell receptor δ rearrangement signals , 1992, Cell.
[32] D. Baltimore,et al. Virus-transformed pre-B cells show ordered activation but not inactivation of immunoglobulin gene rearrangement and transcription , 1991, The Journal of experimental medicine.
[33] E. Kabat,et al. Sequences of proteins of immunological interest , 1991 .
[34] 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.
[35] D. Baltimore,et al. Activation of immunoglobulin kappa gene rearrangement correlates with induction of germline kappa gene transcription , 1989, Cell.
[36] S. Tonegawa,et al. Junctional sequences of T cell receptor gamma delta genes: implications for gamma delta T cell lineages and for a novel intermediate of V-(D)-J joining. , 1989, Cell.
[37] L. Chang,et al. Molecular biology of terminal transferase. , 1986, CRC critical reviews in biochemistry.
[38] S. Tonegawa. Somatic generation of antibody diversity , 1983, Nature.
[39] S. Tonegawa,et al. Somatic generation of antibody diversity. , 1976, Nature.
[40] D. Kemp,et al. Somatic rearrangements forming active immunoglobulin mu genes in B and T lymphoid cell lines. , 1980, Proceedings of the National Academy of Sciences of the United States of America.