Determining γδ versus αβ T cell development
暂无分享,去创建一个
[1] X. Hua,et al. TCR‐mediated ThPOK induction promotes development of mature (CD24−) γδ thymocytes , 2010, The EMBO journal.
[2] M. Turner,et al. Thymic development beyond β-selection requires phosphatidylinositol 3-kinase activation by CXCR4 , 2010, The Journal of experimental medicine.
[3] D. Littman,et al. CXCR4 acts as a costimulator during thymic β selection , 2009, Nature Immunology.
[4] P. Pandolfi,et al. Development of Promyelocytic Zinc Finger and ThPOK-Expressing Innate γδ T Cells Is Controlled by Strength of TCR Signaling and Id3 , 2009, The Journal of Immunology.
[5] F. Real,et al. Interaction between Hhex and SOX13 Modulates Wnt/TCF Activity , 2009, The Journal of Biological Chemistry.
[6] M. Ciofani,et al. Marked induction of the helix-loop-helix protein Id3 promotes the gammadelta T cell fate and renders their functional maturation Notch independent. , 2009, Immunity.
[7] P. Pandolfi,et al. TCR-inducible PLZF transcription factor required for innate phenotype of a subset of γδ T cells with restricted TCR diversity , 2009, Proceedings of the National Academy of Sciences.
[8] Y. Zhuang,et al. Id3 Restricts the Developmental Potential of γδ Lineage during Thymopoiesis1 , 2009, The Journal of Immunology.
[9] B. Vandekerckhove,et al. Notch signaling is required for proliferation but not for differentiation at a well-defined beta-selection checkpoint during human T-cell development. , 2009, Blood.
[10] B. Vandekerckhove,et al. An early decrease in Notch activation is required for human TCR-alphabeta lineage differentiation at the expense of TCR-gammadelta T cells. , 2009, Blood.
[11] A. Hayday,et al. CD27 is a thymic determinant of the balance between interferon-γ- and interleukin 17–producing γδ T cell subsets , 2009, Nature Immunology.
[12] E. Rothenberg,et al. Molecular mechanisms that control mouse and human TCR-αβ and TCR-γδ T cell development , 2008, Seminars in Immunopathology.
[13] A. Krueger,et al. T cell receptor–instructed αβ versus γδ lineage commitment revealed by single-cell analysis , 2008, The Journal of experimental medicine.
[14] Julia M. Lewis,et al. Skint1, the prototype of a newly identified immunoglobulin superfamily gene cluster, positively selects epidermal γδ T cells , 2008, Nature Genetics.
[15] M. Ciofani,et al. The thymus as an inductive site for T lymphopoiesis. , 2007, Annual review of cell and developmental biology.
[16] Ellen V Rothenberg,et al. Negotiation of the T lineage fate decision by transcription-factor interplay and microenvironmental signals. , 2007, Immunity.
[17] Joonsoo Kang,et al. Molecular events that regulate αβ versus γδ T cell lineage commitment: old suspects, new players and different game plans , 2007 .
[18] H. Petrie,et al. Zoned out: functional mapping of stromal signaling microenvironments in the thymus. , 2007, Annual review of immunology.
[19] Y. Chien,et al. Antigen recognition by γδ T cells , 2007 .
[20] P. Love,et al. A retrospective on the requirements for γδ T‐cell development , 2007 .
[21] Hiroshi Yamamoto,et al. γδ T cells: firefighters or fire boosters in the front lines of inflammatory responses , 2007, Immunological reviews.
[22] A. Hayday,et al. Key factors in the organized chaos of early T cell development , 2007, Nature Immunology.
[23] Joonsoo Kang,et al. Regulation of γδ Versus αß T Lymphocyte Differentiation by the Transcription Factor SOX13 , 2007, Science.
[24] Joonsoo Kang,et al. Molecular events that regulate alphabeta versus gammadelta T cell lineage commitment: old suspects, new players and different game plans. , 2007, Current opinion in immunology.
[25] A. Hayday,et al. Early events in the thymus affect the balance of effector and regulatory T cells , 2006, Nature.
[26] Adam A. Margolin,et al. NOTCH1 directly regulates c-MYC and activates a feed-forward-loop transcriptional network promoting leukemic cell growth , 2006, Proceedings of the National Academy of Sciences.
[27] J. Aster,et al. c-Myc is an important direct target of Notch1 in T-cell acute lymphoblastic leukemia/lymphoma. , 2006, Genes & development.
[28] B. Malissen,et al. Visualization of the earliest steps of γδ T cell development in the adult thymus , 2006, Nature Immunology.
[29] M. Ciofani,et al. Stage-Specific and Differential Notch Dependency at the αβ and γδ T Lineage Bifurcation , 2006 .
[30] A. Krueger,et al. Differential synergy of Notch and T cell receptor signaling determines αβ versus γδ lineage fate , 2006, The Journal of experimental medicine.
[31] C. Murre,et al. Interplay between RORgammat, Egr3, and E proteins controls proliferation in response to pre-TCR signals. , 2006, Immunity.
[32] D. Wiest,et al. Recent insights into the signals that control αβ/γδ‐lineage fate , 2006 .
[33] M. Tokunaga,et al. Mechanistic basis of pre–T cell receptor–mediated autonomous signaling critical for thymocyte development , 2006, Nature Immunology.
[34] E. Rothenberg,et al. Developmental and Molecular Characterization of Emerging β- and γδ-Selected Pre-T Cells in the Adult Mouse Thymus , 2006 .
[35] C. Murre. Helix-loop-helix proteins and lymphocyte development , 2005, Nature Immunology.
[36] M. Ciofani,et al. Notch promotes survival of pre–T cells at the β-selection checkpoint by regulating cellular metabolism , 2005, Nature Immunology.
[37] C. Guidos,et al. Requirement for Notch1 signals at sequential early stages of intrathymic T cell development , 2005, Nature Immunology.
[38] J. Aster,et al. Notch signaling controls the generation and differentiation of early T lineage progenitors , 2005, Nature Immunology.
[39] P. Love,et al. TCR Signal Strength Influences αβ/γδ Lineage Fate , 2005 .
[40] M. Carleton,et al. Attenuation of γδTCR Signaling Efficiently Diverts Thymocytes to the αβ Lineage , 2005 .
[41] Xiaolong Liu,et al. The zinc finger protein cKrox directs CD4 lineage differentiation during intrathymic T cell positive selection , 2005, Nature Immunology.
[42] Yi Zhang,et al. The zinc finger transcription factor Th-POK regulates CD4 versus CD8 T-cell lineage commitment , 2005, Nature.
[43] A. Hayday,et al. Lymphotoxin-Mediated Regulation of γδ Cell Differentiation by αß T Cell Progenitors , 2005, Science.
[44] Thomas M. Schmitt,et al. Maintenance of T Cell Specification and Differentiation Requires Recurrent Notch Receptor–Ligand Interactions , 2004, The Journal of experimental medicine.
[45] Thomas M. Schmitt,et al. Heterogeneity among DN1 prothymocytes reveals multiple progenitors with different capacities to generate T cell and non-T cell lineages. , 2004, Immunity.
[46] J. Zúñiga-Pflücker. T-cell development made simple , 2004, Nature Reviews Immunology.
[47] Timothy K Starr,et al. Positive and negative selection of T cells. , 2003, Annual review of immunology.
[48] A. Hayday,et al. The inter-relatedness and interdependence of mouse T cell receptor γδ+ and αβ+ cells , 2003, Nature Immunology.
[49] M. Ciofani,et al. Low Activation Threshold As a Mechanism for Ligand-Independent Signaling in Pre-T Cells 1 , 2003, The Journal of Immunology.
[50] A. Hayday,et al. Immunoregulation in the tissues by |[gamma]||[delta]| T cells , 2003 .
[51] A. Hayday,et al. Regulatory lymphocytes: Immunoregulation in the tissues by γδ T cells , 2003, Nature Reviews Immunology.
[52] P. Love,et al. An architectural perspective on signaling by the pre‐, αβ and γδ T cell receptors , 2003, Immunological reviews.
[53] Thomas M. Schmitt,et al. Induction of T cell development from hematopoietic progenitor cells by delta-like-1 in vitro. , 2002, Immunity.
[54] A. Michie,et al. Regulation of thymocyte differentiation: pre-TCR signals and beta-selection. , 2002, Seminars in immunology.
[55] P. Linsley,et al. Early Growth Response Transcription Factors Are Required for Development of CD4−CD8− Thymocytes to the CD4+CD8+ Stage1 , 2002, The Journal of Immunology.
[56] Alison M Michie,et al. Regulation of thymocyte differentiation: pre-TCR signals and beta-selection. , 2002, Seminars in immunology.
[57] Joonsoo Kang,et al. Evidence That γδ versus αβ T Cell Fate Determination Is Initiated Independently of T Cell Receptor Signaling , 2001, The Journal of experimental medicine.
[58] M. Carleton,et al. Branching out to gain control: how the pre-TCR is linked to multiple functions. , 2000, Immunology today.
[59] K. Muegge,et al. The Interleukin 7 Receptor Is Required for T Cell Receptor γ Locus Accessibility to the V(D)j Recombinase , 2000, The Journal of experimental medicine.
[60] A. Hayday,et al. Signals involved in gamma/delta T cell versus alpha/beta T cell lineage commitment. , 1999, Seminars in immunology.
[61] H. Macdonald,et al. Deficient T cell fate specification in mice with an induced inactivation of Notch1. , 1999, Immunity.
[62] D. Schatz,et al. Characterization of TCR gene rearrangements during adult murine T cell development. , 1999, Journal of immunology.
[63] F. Alt,et al. Thymocyte development in the absence of pre-T cell receptor extracellular immunoglobulin domains. , 1998, Science.
[64] D. Schatz,et al. Productive T-cell receptor beta-chain gene rearrangement: coincident regulation of cell cycle and clonality during development in vivo. , 1996, Genes & development.