Cantrell, D. T cell antigen receptor signal transduction pathways. Annu. Rev. Immunol.14, 259–274 (1996). ArticleCASPubMed Google Scholar
Miyajima, A., Kitamura, T., Harada, N., Yokota, T. & Arai, K. Cytokine receptors and signal transduction. Annu. Rev. Immunol.10, 295–331 (1992). ArticleCASPubMed Google Scholar
Zheng, W. & Flavell, R.A. The transcription factor GATA-3 is necessary and sufficient for Th2 cytokine gene expression in CD4 T cells. Cell89, 587–596 (1997). ArticleCASPubMed Google Scholar
Zhu, J. et al. Conditional deletion of Gata3 shows its essential function in TH1-TH2 responses. Nat. Immunol.5, 1157–1165 (2004). ArticleCASPubMed Google Scholar
Wang, L. et al. Distinct functions for the transcription factors GATA-3 and ThPOK during intrathymic differentiation of CD4+ T cells. Nat. Immunol.9, 1122–1130 (2008). CASPubMedPubMed Central Google Scholar
Ting, C.N., Olson, M.C., Barton, K.P. & Leiden, J.M. Transcription factor GATA-3 is required for development of the T-cell lineage. Nature384, 474–478 (1996). ArticleCASPubMed Google Scholar
Pai, S.Y. et al. Critical roles for transcription factor GATA-3 in thymocyte development. Immunity19, 863–875 (2003). ArticleCASPubMed Google Scholar
Vosshenrich, C.A. et al. A thymic pathway of mouse natural killer cell development characterized by expression of GATA-3 and CD127. Nat. Immunol.7, 1217–1224 (2006). ArticleCASPubMed Google Scholar
Samson, S.I. et al. GATA-3 promotes maturation, IFN-γ production, and liver-specific homing of NK cells. Immunity19, 701–711 (2003). ArticleCASPubMed Google Scholar
Wang, Y., Su, M.A. & Wan, Y.Y. An essential role of the transcription factor GATA-3 for the function of regulatory T cells. Immunity35, 337–348 (2011). ArticleCASPubMedPubMed Central Google Scholar
Wohlfert, E.A. et al. GATA3 controls Foxp3+ regulatory T cell fate during inflammation in mice. J. Clin. Invest.121, 4503–4515 (2011). ArticleCASPubMedPubMed Central Google Scholar
Cipolletta, D. et al. PPAR-γ is a major driver of the accumulation and phenotype of adipose tissue Treg cells. Nature486, 549–553 (2012). ArticleCASPubMedPubMed Central Google Scholar
Hoyler, T. et al. The transcription factor GATA-3 controls cell fate and maintenance of type 2 innate lymphoid cells. Immunity37, 634–648 (2012). ArticleCASPubMedPubMed Central Google Scholar
Mjösberg, J. et al. The transcription factor GATA3 is essential for the function of human type 2 innate lymphoid cells. Immunity37, 649–659 (2012). ArticlePubMedCAS Google Scholar
Sanda, T. et al. Core transcriptional regulatory circuit controlled by the TAL1 complex in Human T cell acute lymphoblastic leukemia. Cancer Cell22, 209–221 (2012). ArticleCASPubMedPubMed Central Google Scholar
van Hamburg, J.P. et al. Cooperation of Gata3, c-Myc and Notch in malignant transformation of double positive thymocytes. Mol. Immunol.45, 3085–3095 (2008). ArticleCASPubMed Google Scholar
Hernández-Hoyos, G., Anderson, M.K., Wang, C., Rothenberg, E.V. & Alberola-Ila, J. GATA-3 expression is controlled by TCR signals and regulates CD4/CD8 differentiation. Immunity19, 83–94 (2003). ArticlePubMed Google Scholar
Guo, L. et al. IL-1 family members and STAT activators induce cytokine production by Th2, Th17, and Th1 cells. Proc. Natl. Acad. Sci. USA106, 13463–13468 (2009). ArticleCASPubMedPubMed Central Google Scholar
Lee, P.P. et al. A Critical role for Dnmt1 and DNA methylation in T cell development, function, and survival. Immunity15, 763–774 (2001). ArticleCASPubMed Google Scholar
Amsen, D. et al. Direct regulation of Gata3 expression determines the T helper differentiation potential of Notch. Immunity27, 89–99 (2007). ArticleCASPubMedPubMed Central Google Scholar
Kieper, W.C. & Jameson, S.C. Homeostatic expansion and phenotypic conversion of naive T cells in response to self peptide/MHC ligands. Proc. Natl. Acad. Sci. USA96, 13306–13311 (1999). ArticleCASPubMedPubMed Central Google Scholar
Goldrath, A.W. & Bevan, M.J. Low-affinity ligands for the TCR drive proliferation of mature CD8+ T cells in lymphopenic hosts. Immunity11, 183–190 (1999). ArticleCASPubMedPubMed Central Google Scholar
Shapiro-Shelef, M., Lin, K.I., Savitsky, D., Liao, J. & Calame, K. Blimp-1 is required for maintenance of long-lived plasma cells in the bone marrow. J. Exp. Med.202, 1471–1476 (2005). ArticleCASPubMedPubMed Central Google Scholar
Schluns, K.S., Kieper, W.C., Jameson, S.C. & Lefrancois, L. Interleukin-7 mediates the homeostasis of naive and memory CD8 T cells in vivo. Nat. Immunol.1, 426–432 (2000). ArticleCASPubMed Google Scholar
Yamashita, M. et al. Identification of a conserved GATA3 response element upstream proximal from the interleukin-13 gene locus. J. Biol. Chem.277, 42399–42408 (2002). ArticleCASPubMed Google Scholar
Murali-Krishna, K. et al. Counting antigen-specific CD8 T cells: a reevaluation of bystander activation during viral infection. Immunity8, 177–187 (1998). ArticleCASPubMed Google Scholar
Wang, R. et al. The transcription factor Myc controls metabolic reprogramming upon T lymphocyte activation. Immunity35, 871–882 (2011). ArticleCASPubMedPubMed Central Google Scholar
Peschon, J.J. et al. Early lymphocyte expansion is severely impaired in interleukin 7 receptor-deficient mice. J. Exp. Med.180, 1955–1960 (1994). ArticleCASPubMed Google Scholar
Kerdiles, Y.M. et al. Foxo1 links homing and survival of naive T cells by regulating L-selectin, CCR7 and interleukin 7 receptor. Nat. Immunol.10, 176–184 (2009). ArticleCASPubMedPubMed Central Google Scholar
Ouyang, W., Beckett, O., Flavell, R.A. & Li, M.O. An essential role of the Forkhead-box transcription factor Foxo1 in control of T cell homeostasis and tolerance. Immunity30, 358–371 (2009). ArticleCASPubMedPubMed Central Google Scholar
Kaech, S.M. et al. Selective expression of the interleukin 7 receptor identifies effector CD8 T cells that give rise to long-lived memory cells. Nat. Immunol.4, 1191–1198 (2003). ArticleCASPubMed Google Scholar
Tzachanis, D. et al. Tob is a negative regulator of activation that is expressed in anergic and quiescent T cells. Nat. Immunol.2, 1174–1182 (2001). ArticleCASPubMed Google Scholar
Buckley, A.F., Kuo, C.T. & Leiden, J.M. Transcription factor LKLF is sufficient to program T cell quiescence via a c-Myc-dependent pathway. Nat. Immunol.2, 698–704 (2001). ArticleCASPubMed Google Scholar
Potvin, E. et al. Cooperative action of multiple cis-acting elements is required for N-myc expression in branchial arches: specific contribution of GATA3. Mol. Cell. Biol.30, 5348–5363 (2010). ArticleCASPubMedPubMed Central Google Scholar
Ouyang, W. et al. Inhibition of Th1 development mediated by GATA-3 through an IL-4-independent mechanism. Immunity9, 745–755 (1998). ArticleCASPubMed Google Scholar
Yu, Q. et al. T cell factor 1 initiates the T helper type 2 fate by inducing the transcription factor GATA-3 and repressing interferon-γ. Nat. Immunol.10, 992–999 (2009). ArticleCASPubMedPubMed Central Google Scholar
Amsen, D. et al. Instruction of distinct CD4 T helper cell fates by different notch ligands on antigen-presenting cells. Cell117, 515–526 (2004). ArticleCASPubMed Google Scholar
Okamoto, M. et al. Essential role of Notch signaling in effector memory CD8+ T cell-mediated airway hyperresponsiveness and inflammation. J. Exp. Med.205, 1087–1097 (2008). ArticleCASPubMedPubMed Central Google Scholar
Gattinoni, L. et al. Wnt signaling arrests effector T cell differentiation and generates CD8+ memory stem cells. Nat. Med.15, 808–813 (2009). ArticleCASPubMedPubMed Central Google Scholar
Morrot, A., Hafalla, J.C., Cockburn, I.A., Carvalho, L.H. & Zavala, F. IL-4 receptor expression on CD8+ T cells is required for the development of protective memory responses against liver stages of malaria parasites. J. Exp. Med.202, 551–560 (2005). ArticleCASPubMedPubMed Central Google Scholar
Ku, C.J., Hosoya, T., Maillard, I. & Engel, J.D. GATA-3 regulates hematopoietic stem cell maintenance and cell-cycle entry. Blood119, 2242–2251 (2012). ArticleCASPubMedPubMed Central Google Scholar
Liang, H.E. et al. Divergent expression patterns of IL-4 and IL-13 define unique functions in allergic immunity. Nat. Immunol.13, 58–66 (2012). ArticleCAS Google Scholar
Sel, S. et al. Effective prevention and therapy of experimental allergic asthma using a GATA-3-specific DNAzyme. J. Allergy Clin. Immunol.121, 910–916 e915 (2008). ArticleCASPubMed Google Scholar