A requirement for sustained ERK signaling during thymocyte positive selection in vivo.
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[1] D. Oh,et al. Calcium oscillations regulate thymocyte motility during positive selection in the three-dimensional thymic environment , 2005, Nature Immunology.
[2] A. Strasser,et al. T-lymphocyte death during shutdown of an immune response. , 2004, Trends in immunology.
[3] S. Korsmeyer,et al. Survival factor-induced extracellular signal-regulated kinase phosphorylates BIM, inhibiting its association with BAX and proapoptotic activity. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[4] R. Harland,et al. Cloning and characterization of Xenopus Id4 reveals differing roles for Id genes. , 2003, Developmental biology.
[5] Timothy K Starr,et al. Positive and negative selection of T cells. , 2003, Annual review of immunology.
[6] J. Nichols,et al. BMP Induction of Id Proteins Suppresses Differentiation and Sustains Embryonic Stem Cell Self-Renewal in Collaboration with STAT3 , 2003, Cell.
[7] G. Pagès,et al. Phosphorylation of Bim-EL by Erk1/2 on serine 69 promotes its degradation via the proteasome pathway and regulates its proapoptotic function , 2003, Oncogene.
[8] Peter O. Krutzik,et al. Intracellular phospho‐protein staining techniques for flow cytometry: Monitoring single cell signaling events , 2003, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[9] S. Cook,et al. Activation of the ERK1/2 Signaling Pathway Promotes Phosphorylation and Proteasome-dependent Degradation of the BH3-only Protein, Bim* , 2003, Journal of Biological Chemistry.
[10] Y. Zhuang,et al. Regulation of early lymphocyte development by E2A family proteins. , 2002, Seminars in immunology.
[11] J. Stone,et al. RasGRP1 transduces low-grade TCR signals which are critical for T cell development, homeostasis, and differentiation. , 2002, Immunity.
[12] K. Miyazono,et al. Id: A Target of BMP Signaling , 2002, Science's STKE.
[13] J. Milbrandt,et al. Thymocyte Development in Early Growth Response Gene 1-Deficient Mice1 , 2002, The Journal of Immunology.
[14] Rey-Huei Chen,et al. Molecular interpretation of ERK signal duration by immediate early gene products , 2002, Nature Cell Biology.
[15] Stuart M. Brown,et al. Rare, structurally homologous self-peptides promote thymocyte positive selection. , 2002, Immunity.
[16] A. Strasser,et al. BH3-only Bcl-2 family member Bim is required for apoptosis of autoreactive thymocytes , 2002, Nature.
[17] C. Murre,et al. The function of E- and id proteins in lymphocyte development , 2001, Nature Reviews Immunology.
[18] Pamela S. Ohashi,et al. Duration and Strength of Extracellular Signal-Regulated Kinase Signals Are Altered During Positive Versus Negative Thymocyte Selection1 , 2001, The Journal of Immunology.
[19] K. Hogquist. Signal strength in thymic selection and lineage commitment. , 2001, Current opinion in immunology.
[20] S. Peltz,et al. The cap-to-tail guide to mRNA turnover , 2001, Nature Reviews Molecular Cell Biology.
[21] C. Murre,et al. Id3 inhibits B lymphocyte progenitor growth and survival in response to TGF-β , 2001, Nature Immunology.
[22] E. Wagner,et al. C-Jun Nh2-Terminal Kinase (Jnk)1 and Jnk2 Have Similar and Stage-Dependent Roles in Regulating T Cell Apoptosis and Proliferation , 2001, The Journal of experimental medicine.
[23] C. Murre,et al. Regulation of the helix-loop-helix proteins, E2A and Id3, by the Ras-ERK MAPK cascade , 2001, Nature Immunology.
[24] J. Stone,et al. RasGRP is essential for mouse thymocyte differentiation and TCR signaling , 2000, Nature Immunology.
[25] M. A. Basson,et al. Early Growth Response (Egr)-1 Gene Induction in the Thymus in Response to TCR Ligation During Early Steps in Positive Selection Is Not Required for CD8 Lineage Commitment1 , 2000, The Journal of Immunology.
[26] T. Mustelin,et al. Extracellular signals and scores of phosphatases: all roads lead to MAP kinase. , 2000, Seminars in immunology.
[27] Barbara Hausmann,et al. A motif in the αβ T-cell receptor controls positive selection by modulating ERK activity , 2000, Nature.
[28] P. Ohashi,et al. Degree of ERK activation influences both positive and negative thymocyte selection , 2000, European journal of immunology.
[29] S. Keyse,et al. Protein phosphatases and the regulation of mitogen-activated protein kinase signalling. , 2000, Current opinion in cell biology.
[30] U. Bommhardt,et al. MEK Activity Regulates Negative Selection of Immature CD4+CD8+ Thymocytes1 , 2000, The Journal of Immunology.
[31] J. Pouysségur,et al. Defective thymocyte maturation in p44 MAP kinase (Erk 1) knockout mice. , 1999, Science.
[32] J. Kaye,et al. Slow accumulation of active mitogen-activated protein kinase during thymocyte differentiation regulates the temporal pattern of transcription factor gene expression. , 1999, Journal of immunology.
[33] A. Nordheim,et al. Id Genes Are Direct Targets of Bone Morphogenetic Protein Induction in Embryonic Stem Cells* , 1999, The Journal of Biological Chemistry.
[34] K. Hogquist,et al. Antigen-induced coreceptor down-regulation on thymocytes is not a result of apoptosis. , 1999, Journal of immunology.
[35] R. Flavell,et al. The JNK Pathway Regulates the In Vivo Deletion of Immature CD4+CD8+ Thymocytes , 1998, The Journal of experimental medicine.
[36] A. Lindahl,et al. The helix‐loop‐helix transcription factors Id1 and Id3 have a functional role in control of cell division in human normal and neoplastic chondrocytes , 1998, FEBS letters.
[37] E. Nishida,et al. Differential roles of ERK and p38 MAP kinase pathways in positive and negative selection of T lymphocytes. , 1998, Immunity.
[38] J. Kaye,et al. Induction of the Early Growth Response (Egr) Family of Transcription Factors during Thymic Selection , 1997, The Journal of experimental medicine.
[39] R W Wilkinson,et al. Positive selection of thymocytes involves sustained interactions with the thymic microenvironment. , 1995, Journal of immunology.
[40] G. Linette,et al. Unimpaired thymic and peripheral T cell death in mice lacking the nuclear receptor NGFI-B (Nur77). , 1995, Science.
[41] P. Kisielow,et al. Positive selection of T cells: rescue from programmed cell death and differentiation require continual engagement of the T cell receptor , 1995, The Journal of experimental medicine.
[42] J. Milbrandt,et al. Growth and Differentiation Proceeds Normally in Cells Deficient in the Immediate Early Gene NGFI-A (*) , 1995, The Journal of Biological Chemistry.
[43] E. Krebs,et al. Selective requirement for MAP kinase activation in thymocyte differentiation , 1995, Nature.
[44] C. Marshall,et al. Specificity of receptor tyrosine kinase signaling: Transient versus sustained extracellular signal-regulated kinase activation , 1995, Cell.
[45] R. Perlmutter,et al. Involvement of p21ras distinguishes positive and negative selection in thymocytes. , 1995, The EMBO journal.
[46] R. Dyall,et al. The majority of postselection CD4+ single-positive thymocytes requires the thymus to produce long-lived, functional T cells , 1995, The Journal of experimental medicine.
[47] C. Pénit,et al. Production, selection, and maturation of thymocytes with high surface density of TCR. , 1994, Journal of immunology.
[48] Kristin A. Hogquist,et al. T cell receptor antagonist peptides induce positive selection , 1994, Cell.
[49] C. Pénit,et al. Normal sequence of phenotypic transitions in one cohort of 5-bromo-2'-deoxyuridine-pulse-labeled thymocytes. Correlation with T cell receptor expression. , 1993, Journal of immunology.
[50] E. Van Obberghen,et al. Co-regulation of the mitogen-activated protein kinase, extracellular signal-regulated kinase 1, and the 90-kDa ribosomal S6 kinase in PC12 cells. Distinct effects of the neurotrophic factor, nerve growth factor, and the mitogenic factor, epidermal growth factor. , 1993, The Journal of biological chemistry.
[51] P. Cohen,et al. Sustained activation of the mitogen-activated protein (MAP) kinase cascade may be required for differentiation of PC12 cells. Comparison of the effects of nerve growth factor and epidermal growth factor. , 1992, The Biochemical journal.
[52] M. Kloc,et al. Notch signaling is involved in the regulation of Id3 gene transcription during Xenopus embryogenesis. , 2002, Differentiation; research in biological diversity.
[53] A. Alonso,et al. Protein tyrosine phosphatases. , 2002, Frontiers in bioscience : a journal and virtual library.
[54] K. Hogquist,et al. Assays of thymic selection. Fetal thymus organ culture and in vitro thymocyte dulling assay. , 2001, Methods in molecular biology.
[55] C. Murre,et al. Thymocyte selection is regulated by the helix-loop-helix inhibitor protein, Id3. , 2000, Immunity.