Sensing of pyrophosphate metabolites byVg9Vd2T cells
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[1] Judith E. Hall,et al. Microbe-Specific Unconventional T Cells Induce Human Neutrophil Differentiation into Antigen Cross-Presenting Cells , 2014, The Journal of Immunology.
[2] D. Olive,et al. Phosphoantigens and butyrophilin 3A1 induce similar intracellular activation signaling in human TCRVγ9+ γδ T lymphocytes. , 2014, Immunology letters.
[3] D. Olive,et al. Vγ9Vδ2 TCR‐activation by phosphorylated antigens requires butyrophilin 3 A1 (BTN3A1) and additional genes on human chromosome 6 , 2014, European journal of immunology.
[4] H. Arnett,et al. Immune modulation by butyrophilins , 2014, Nature Reviews Immunology.
[5] Vincenzo Cerundolo,et al. Biology of CD1- and MR1-restricted T cells. , 2014, Annual review of immunology.
[6] L. Walter,et al. Vγ9 and Vδ2 T cell antigen receptor genes and butyrophilin 3 (BTN3) emerged with placental mammals and are concomitantly preserved in selected species like alpaca (Vicugna pacos) , 2014, Immunogenetics.
[7] N. K. Williams,et al. Butyrophilin 3A1 binds phosphorylated antigens and stimulates human γδ T cells , 2013, Nature Immunology.
[8] M. Kopf,et al. The origin and fate of γδT cell subsets. , 2013, Current opinion in immunology.
[9] Zheng W. Chen. Multifunctional immune responses of HMBPP-specific Vγ2Vδ2 T cells in M. tuberculosis and other infections , 2012, Cellular and Molecular Immunology.
[10] E. Adams,et al. Key implication of CD277/butyrophilin-3 (BTN3A) in cellular stress sensing by a major human γδ T-cell subset. , 2012, Blood.
[11] Manuel T. Silva. Classical Labeling of Bacterial Pathogens According to Their Lifestyle in the Host: Inconsistencies and Alternatives , 2012, Front. Microbio..
[12] E. Adams,et al. Evolution of the V, D, and J gene segments used in the primate γδ T-cell receptor reveals a dichotomy of conservation and diversity , 2011, Proceedings of the National Academy of Sciences.
[13] David W. Johnson,et al. Human Neutrophil Clearance of Bacterial Pathogens Triggers Anti-Microbial γδ T Cell Responses in Early Infection , 2011, PLoS pathogens.
[14] M. Bonneville,et al. Human Vgamma9Vdelta2 T cells: from signals to functions. , 2010, Seminars in immunology.
[15] Hong Wang,et al. Vγ2Vδ2 T Cell Receptor Recognition of Prenyl Pyrophosphates Is Dependent on All CDRs , 2010, The Journal of Immunology.
[16] B. Kimmel,et al. Reduced Expression of the Mevalonate Pathway Enzyme Farnesyl Pyrophosphate Synthase Unveils Recognition of Tumor Cells by Vγ9Vδ2 T Cells1 , 2009, The Journal of Immunology.
[17] Zheng W. Chen,et al. Definition of APC Presentation of Phosphoantigen (E)-4-Hydroxy-3-methyl-but-2-enyl Pyrophosphate to Vγ2Vδ2 TCR1 , 2008, The Journal of Immunology.
[18] Christian Belmant,et al. Synthesis and biological activity of phosphonate analogues and geometric isomers of the highly potent phosphoantigen (E)-1-hydroxy-2-methylbut-2-enyl 4-diphosphate. , 2008, Journal of medicinal chemistry.
[19] L. Paša-Tolić,et al. Preferential recognition of a microbial metabolite by human Vγ2Vδ2 T cells , 2007 .
[20] J. Trowsdale,et al. Structural basis for PRYSPRY-mediated tripartite motif (TRIM) protein function , 2007, Proceedings of the National Academy of Sciences.
[21] M. Bonneville,et al. Potentiation of Antigen-Stimulated Vγ9Vδ2 T Cell Cytokine Production by Immature Dendritic Cells (DC) and Reciprocal Effect on DC Maturation1 , 2006, The Journal of Immunology.
[22] M. Rogers,et al. Alkylamines cause Vγ9Vδ2 T-cell activation and proliferation by inhibiting the mevalonate pathway , 2006 .
[23] B. de Bono,et al. Relationship between SPRY and B30.2 protein domains. Evolution of a component of immune defence? , 2005, Immunology.
[24] J. Wiesner,et al. Microbial isoprenoid biosynthesis and human γδ T cell activation , 2003, FEBS letters.
[25] G. De Libero,et al. Human T Cell Receptor γδ Cells Recognize Endogenous Mevalonate Metabolites in Tumor Cells , 2003, The Journal of experimental medicine.
[26] C. Harding,et al. Phosphoantigen Presentation by Macrophages to Mycobacterium tuberculosis-Reactive Vγ9Vδ2+ T Cells: Modulation by Chloroquine , 2002, Infection and Immunity.
[27] K. Danno,et al. Essential Contribution of Germline-Encoded Lysine Residues in Jγ1.2 Segment to the Recognition of Nonpeptide Antigens by Human γδ T Cells1 , 2001, The Journal of Immunology.
[28] J. Wiesner,et al. Identification of (E)‐4‐hydroxy‐3‐methyl‐but‐2‐enyl pyrophosphate as a major activator for human γδ T cells in Escherichia coli , 2001 .
[29] Yoshimasa Tanaka,et al. Structural Features of Nonpeptide Prenyl Pyrophosphates That Determine Their Antigenicity for Human γδ T Cells1 , 2001, The Journal of Immunology.
[30] M. Bonneville,et al. Chemical Synthesis and Biological Activity of Bromohydrin Pyrophosphate, a Potent Stimulator of Human γδ T Cells* , 2001, The Journal of Biological Chemistry.
[31] H. Jomaa,et al. Cutting Edge: Human γδ T Cells Are Activated by Intermediates of the 2-C-methyl-d-erythritol 4-phosphate Pathway of Isoprenoid Biosynthesis1 , 2001, The Journal of Immunology.
[32] S. Beck,et al. The cluster of BTN genes in the extended major histocompatibility complex. , 2001, Genomics.
[33] M. Bonneville,et al. A chemical basis for recognition of nonpeptide antigens by human γδ T cells* , 2000 .
[34] M. Bonneville,et al. Vγ9 / Vδ2 T lymphocytes reduce the viability of intracellular Mycobacterium tuberculosis , 2000 .
[35] G. Favre,et al. Epidermal growth factor stimulates 3-hydroxy-3-methylglutaryl-coenzyme A reductase expression via the ErbB-2 pathway in human breast adenocarcinoma cells. , 1999, Biochemical and biophysical research communications.
[36] M. Wilhelm,et al. Gamma/delta T-cell stimulation by pamidronate. , 1999, The New England journal of medicine.
[37] H. Band,et al. Crucial Role of TCRγ Chain Junctional Region in Prenyl Pyrophosphate Antigen Recognition by γδ T Cells , 1998, The Journal of Immunology.
[38] M. Bonneville,et al. A novel nucleotide‐containing antigen for human blood γδ T lymphocytes , 1996, European journal of immunology.
[39] Yoshimasa Tanaka,et al. Direct presentation of nonpeptide prenyl pyrophosphate antigens to human γδ T cells , 1995 .
[40] G. De Libero,et al. Human Vγ9‐Vδ2 cells are stimulated in a crossreactive fashion by a variety of phosphorylated metabolites , 1995 .
[41] M. Bonneville,et al. Early activation of human V gamma 9V delta 2 T cell broad cytotoxicity and TNF production by nonpeptidic mycobacterial ligands. , 1995, Journal of immunology.
[42] B. Bloom,et al. Natural and synthetic non-peptide antigens recognized by human γδ T cells , 1995, Nature.
[43] H. Band,et al. V gamma 2V delta 2 TCR-dependent recognition of non-peptide antigens and Daudi cells analyzed by TCR gene transfer. , 1995, Journal of immunology.
[44] Y. Tanaka,et al. Nonpeptide ligands for human gamma delta T cells. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[45] M. Bonneville,et al. Stimulation of human gamma delta T cells by nonpeptidic mycobacterial ligands. , 1994, Science.
[46] R. Gupta,et al. Human peripheral gamma delta T cells recognize hsp60 molecules on Daudi Burkitt's lymphoma cells. , 1993, Journal of immunology.
[47] A. Hayday,et al. Butyrophilins: an emerging family of immune regulators. , 2012, Trends in immunology.
[48] David Moreira,et al. Origins and early evolution of the mevalonate pathway of isoprenoid biosynthesis in the three domains of life. , 2011, Molecular biology and evolution.
[49] R. Mariuzza,et al. Antigen recognition by human γδ T cells: pattern recognition by the adaptive immune system , 2009, Springer Seminars in Immunopathology.
[50] P. Vantourout,et al. Ecto-F1-ATPase and MHC-class I close association on cell membranes. , 2008, Molecular immunology.
[51] Eva-Maria Kobak,et al. Affiliations , 1975, Migration, Stability and Solidarity.
[52] R. Bontrop,et al. T-cell receptor gamma/delta: comparison of gene configurations and function between humans and chimpanzees , 2004, Immunogenetics.