scholarly journals Rat NKR‐P1+CD3+T cells: selective proliferation in interleukin‐2, diverse T‐cell‐receptor‐Vβ repertoire and polarized interferon‐γ expression

Immunology ◽  
1998 ◽  
Vol 95 (1) ◽  
pp. 117-125 ◽  
Author(s):  
BADOVINAC ◽  
BOGGIANO ◽  
TRAJKOVIĆ ◽  
FREY ◽  
VUJANOVIĆ ◽  
...  
Blood ◽  
2014 ◽  
Vol 124 (21) ◽  
pp. 3830-3830
Author(s):  
Yasmine Van Caeneghem ◽  
Glenn Goetgeluk ◽  
Sylvia Snauwaert ◽  
Fritz Offner ◽  
Reno Debets ◽  
...  

Abstract T cell therapy for the treatment of malignant diseases is based on the lenti- or retroviral introduction of an exogenous receptor in peripheral blood T cells. The exogenous receptor is either antibody based or T cell receptor (TCR) based. Chimeric antigen receptors (CAR) are antibody based receptors that can redirect T cells against membrane antigens expressed by malignant cells. CD19-specific CARs were reported to be very effective in the treatment of CD19+ acute leukemias. To redirect T cells based on cytoplasmic antigens, transduction of a TCR is required. However, this approach still faces technical problems, esp. interference of the endogenous TCR chains may cause loss of avidity and possibly induction of autoimmunity. We here present an alternative strategy, in which, not mature T cells but CD34+ hematopoietic precursor cells are transduced and subsequently differentiated to mature T cells after introduction of a wild type TCR or of a fusion TCR:CD3ζ with or without costimulator signal. When Wilms tumor 1 (WT1)/HLA-A2-specific T cell receptor α and β chain is introduced in CD34+ cells derived from human thymus, cord blood or adult mobilized precursor cells and subsequently induced to differentiate to T cells on OP9 stromal cells expressing Delta-like ligand 1(OP9-DL1) in the presence of stem cell factor, flt3 ligand and interleukin 7, massive proliferation is observed while the cells differentiate to CD4+CD8+double positive (DP) transduced TCR+ immature cells. Few mature T cells are generated in these cultures, but after addition of the specific peptide to HLA-A2+ cultures, DP cells rapidly differentiate to phenotypically mature naïve CD8 single positive T cells. Upon activation, these T cells specifically lyse WT1/HLA-A2 cell lines and produce interferon-γ. Microarray expression analysis revealed these culture-generated T cells to be similar to TCR-transduced peripheral blood T cells, except for 1) the expression of only one TCR α and β chain by the in vitro generated T cells and 2) the underexpression of costimulatory/inhibitory molecules such as CD28, CTLA-4 and PD-L1. The absence of CD28 on the cell membrane was confirmed by flow cytometry. Since it was shown that CD28 signaling is essential for in vivo functionality using CARs, we next generated fusion TCR constructs of a gp100/HLA-A2-specific TCR and the signaling cassettes of CD3ζ and CD28.The following constructs were introduced in CD34+ cells: wild type TCR, TCR:ζ or TCR:CD28ζ α and β chains. The α and β chain double-transduced cells were subsequently cultured on OP9-DL1 in the absence of the specific antigen. It was observed that TCR:ζ transduced precursors proliferated significantly less than wild type TCR transduced cells, but the majority of the cells differentiated towards DP TCR:ζ+ cells, which upon addition of the specific antigen differentiated to phenotypically mature T cells. TCR:CD28ζ transduced cells proliferated least of all and spontaneously matured to functional double negative T cells without passing through the DP stage. These observations are compatible with data obtained in mice showing that strong TCR activation during thymocyte differentiation inhibits the generation of DP cells. In all of these cultures, endogenous TCR rearrangements were suppressed, which resulted in single receptor tumoricidal cells. Functional analysis of these various cell populations showed similar proliferation on T cell growth factors and specific cytolytic activity of gp100+ HLA-A2+ tumor lines. However, the TCR:CD28ζ transduced cells produced significantly higher levels of TNFα and interferon-γ and were the only ones that produced interleukin-2 upon specific stimulation. In conclusion, we have shown that high numbers of polyfunctional single receptor TCR:CD28ζ+ cells can be generated in vitro from clinically relevant stem cell sources. These cells produce interleukin-2, TNFα and interferon-γ and specifically kill gp100/HLA-A2+ tumor cell lines. Disclosures No relevant conflicts of interest to declare.


1994 ◽  
Vol 14 (2) ◽  
pp. 1095-1103
Author(s):  
A L Burkhardt ◽  
T Costa ◽  
Z Misulovin ◽  
B Stealy ◽  
J B Bolen ◽  
...  

Signal transduction by antigen receptors and some Fc receptors requires the activation of a family of receptor-associated transmembrane accessory proteins. One common feature of the cytoplasmic domains of these accessory molecules is the presence is at least two YXXA repeats that are potential sites for interaction with Src homology 2 domain-containing proteins. However, the degree of similarity between the different receptor-associated proteins varies from that of T-cell receptor (TCR) zeta and Fc receptor RIIIA gamma chains, which are homologous, to the distantly related Ig alpha and Ig beta proteins of the B-cell antigen receptor. To determine whether T- and B-cell antigen receptors are in fact functionally homologous, we have studied signal transduction by chimeric immunoglobulins bearing the Ig alpha or Ig beta cytoplasmic domain. We found that Ig alpha and Ig beta cytoplasmic domains were able to activate Ca2+ flux, interleukin-2 secretion, and phosphorylation of the same group of cellular substrates as the TCR in transfected T cells. Chimeric proteins were then used to examine the minimal requirements for activation of the Fyn, Lck, and ZAP kinases in T cells. Both Ig alpha and Ig beta were able to trigger Fyn, Lck, and ZAP directly without involvement of TCR components. Cytoplasmic tyrosine residues in Ig beta were required for recruitment and activation of ZAP-70, but these amino acids were not essential for the activation of Fyn and Lck. We conclude that Fyn and Lck are able to recognize a clustered nonphosphorylated immune recognition receptor, but activation of these kinases is not sufficient to induce cellular responses such as Ca2+ flux and interleukin-2 secretion. In addition, the molecular structures involved in antigen receptor signaling pathways are conserved between T and B cells.


1987 ◽  
Vol 7 (12) ◽  
pp. 4472-4481
Author(s):  
C H June ◽  
J A Ledbetter ◽  
M M Gillespie ◽  
T Lindsten ◽  
C B Thompson

CD28 is a homodimeric glycoprotein expressed on the surface of a major subset of human T cells that has recently been identified as a member of the immunoglobulin supergene family. The binding of monoclonal antibodies to the CD28 antigen on purified T cells does not result in proliferation; however, previous studies have shown that the combination of CD28 stimulation and protein kinase C activation by phorbol myristate acetate (PMA) results in T-cell proliferation that is independent of both accessory cells and activation of the T-cell receptor-CD3 complex. In the present study, effects of stimulation by anti-CD28 on cell cycle progression and on the interleukin 2 (IL-2) and IL-2 receptor system have been investigated on primary cultures of purified peripheral-blood CD28+ T cells. There was no measurable effect on cell size or on DNA synthesis after stimulation of resting (G0) cells by CD28 alone. After 3 h of activation of T cells by PMA alone, a slight (8%) increase in cell volume occurred that did not progress to DNA synthesis. In contrast, T-cell stimulation by CD28 in combination with PMA resulted in a progressive increase in cell volume in approximately 100% of cells at 12 to 14 h after stimulation. Northern blot (RNA blot) analysis revealed that CD28 stimulation alone failed to cause expression of the alpha chain of the IL-2 receptor or of IL-2 mRNA, and in accord with previous studies, stimulation by PMA alone resulted in the accumulation of IL-2 receptor transcripts but no detectable IL-2 mRNA. In contrast, T-cell stimulation by the combination of CD28 and PMA resulted in the appearance of IL-2 transcripts and enhanced expression of IL-2 receptor mRNA. Functional studies revealed that the proliferation induced by CD28 and PMA stimulation was entirely resistant to cyclosporine, in contrast to T-cell activation induced by the CD3-T-cell receptor complex. Cyclosporine was found not to affect the accumulation of IL-2 mRNA after CD28 plus PMA stimulation, although there was no detectable IL-2 mRNA after stimulation by CD3 in the presence of the drug. Furthermore, stimulation by CD28 in combination with immobilized CD3 antibodies caused a striking enhancement of IL-2 mRNA expression that was, in part, resistant to the effects of cyclosporine. These studies indicate that the CD28 molecule synergizes with protein kinase C activation to induce IL-2 gene expression and demonstrate that stimulation by the CD28 pathway can cause vigorous T-cell proliferation even in the presence of cyclosporine and that cyclosporine does not prevent transcription of 16-2 mRNA, as has been suggested previously. Moreover, these findings suggest that a potential role for the CD28 molecule in vivo may be to augment IL-2 production after stimulation of the CD3-T-cell receptor molecular complex and thereby to amplify an antigen-specific immune response. Finally, these results provide further evidence that the CD28 molecule triggers T-cell proliferation in a manner that differs biochemically from CD3-T-cell receptor-induced proliferation.


1995 ◽  
Vol 182 (3) ◽  
pp. 759-767 ◽  
Author(s):  
K Sato ◽  
K Ohtsuka ◽  
K Hasegawa ◽  
S Yamagiwa ◽  
H Watanabe ◽  
...  

In addition to the major intrathymic pathway of T cell differentiation, extrathymic pathways of such differentiation have been shown to exist in the liver and intestine. In particular, hepatic T cells of T cell receptors or CD3 of intermediate levels (i.e., intermediate T cell receptor cells) always contain self-reactive clones and sometimes appear at other sites, including the target tissues in autoimmune diseases and the tumor sites in malignancies. To prove their extrathymic origin and self reactivity, in this study we used thymectomized, irradiated (B6 x C3H/He) F1 mice subjected to transplantation of bone marrow cells of B6 mice. It was clearly demonstrated that all T cells generated under athymic conditions in the peripheral immune organs are intermediate CD3 cells. In the case of nonthymectomized irradiated mice, not only intermediate CD3 cells but also high CD3 cells were generated. Phenotypic characterization showed that newly generated intermediate CD3 cells were unique (e.g., interleukin 2 receptor alpha-/beta+ and CD44+ L-selectin-) and were, therefore, distinguishable from thymus-derived T cells. The precursor cells of intermediate CD3 cells in the bone marrow were Thy-1+ CD3-. The extrathymic generation of intermediate CD3 cells was confirmed in other combinations of bone marrow transplantation, C3H --> C3H and B10.Thy1.1 --> B6.Thy1.2. The generated intermediate CD3 cells in the liver contained high levels of self-reactive clones estimated by anti-V beta monoclonal antibodies in conjunction with the endogenous superantigen minor lymphocyte-stimulating system, especially the combination of B6 --> (B6 x C3H/He) (graft-versus-host-situation).(ABSTRACT TRUNCATED AT 250 WORDS)


2016 ◽  
Vol 12 (11) ◽  
pp. e1006030 ◽  
Author(s):  
Aileen G. Rowan ◽  
Aviva Witkover ◽  
Anat Melamed ◽  
Yuetsu Tanaka ◽  
Lucy B. M. Cook ◽  
...  

1993 ◽  
Vol 23 (1) ◽  
pp. 250-254 ◽  
Author(s):  
Carlos Martínez-a ◽  
Miguel A. R. Marcos ◽  
Ignacio M. de Alboran ◽  
José María Alonso ◽  
Rafael de Cid ◽  
...  

1987 ◽  
Vol 7 (2) ◽  
pp. 650-656 ◽  
Author(s):  
J A Ledbetter ◽  
L E Gentry ◽  
C H June ◽  
P S Rabinovitch ◽  
A F Purchio

Stimulation of T cells or the Jurkat T-cell line with soluble antibodies to the CD3/T-cell receptor complex causes mobilization of cytoplasmic Ca2+, which is blocked by pertussis toxin but not by ethylene glycol-bis(beta-aminoethyl ether)-N,N,N',N'-tetraacetic acid, and translocation of protein kinase C activity from the cytoplasm to the membrane. Such stimulation also causes phosphorylation of pp60c-src at an amino-terminal serine residue. These activities are consistent with induction of phosphatidylinositol metabolism after antibody binding. Anti-CD3 stimulation with antibody in solution, however, does not cause Jurkat cells to release interleukin 2 and blocks rather than induces proliferation of T cells. Induction of interleukin 2 production by Jurkat cells and proliferation by normal T cells requires anti-CD3 stimulation with antibody on a solid support, such as Sepharose beads or a plastic dish. Thus, we examined phosphorylation of pp60c-src after stimulation of Jurkat cells with anti-CD3 in solution or on solid phase. Both of these caused serine phosphorylation of pp60c-src that was indistinguishable even after 4 h of stimulation. These results indicate that the mode of anti-CD3 stimulation (in solution or on solid phase) controls a cellular function that modifies the consequences of signal transduction through phosphatidylinositol turnover.


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