Upon antigenic stimulation, naive T lymphocytes proliferate and a fraction of the activated cells acquire a T helper cell type 1 (Th1) or Th2 phenotype as well as the capacity to migrate to inflamed tissues. However, the antigen-primed T cells that receive a short T cell receptor (TCR) stimulation do not acquire effector function and remain in a nonpolarized state. Using TCR transgenic CD4(+) T cells in an adoptive transfer system, we compared the in vivo migratory capacities of naive, nonpolarized, Th1 or Th2 cells. Although all cell types migrated to the spleen, only naive and nonpolarized T cells efficiently migrated to lymph nodes. In addition Th1, but not Th2, migrated to inflamed tissues. In the lymph nodes, nonpolarized T cells proliferated and acquired effector function in response to antigenic stimulation, displaying lower activation threshold and faster kinetics compared with naive T cells. These results suggest that nonpolarized T cells are in an intermediate state of differentiation characterized by lymph node homing capacity and increased responsiveness that allows them to mount a prompt and effective secondary response.
Development of Th1 and Th2 effector lymphocytes is driven primarily by IL-12 or IL-4, but is also influenced by the strength of antigenic stimulation. However, the mechanism by which TCR signaling contributes to T cell polarization remains elusive. We show that in the presence of IL-12 a short TCR stimulation can lead to efficient Th1 polarization and IL-12 exerts its effect when present during, as well as after, TCR signaling. In contrast, Th2 polarization requires a prolonged TCR stimulation and IL-4 is effective only when present during the period of TCR triggering. The simultaneous stimulation by TCR and IL-4 is required to induce demethylation of IL-4 and IL-13 genes that accompanies the stochastic generation of Th2 cells producing either or both cytokines. Thus, the duration of TCR stimulation represents a crucial parameter that influences the response to polarizing cytokines and the acquisition of T cell effector functions.
Killer inhibitory receptors (KIRs) are transmembrane glycoproteins, expressed on NK cells and a small subset of T cells, that inhibit cell-mediated cytotoxicity upon binding to polymorphic MHC class I determinants on target cells. Although human KIRs specific for HLA-C and HLA-B molecules have been characterized, none have been shown to interact with HLA-A. Here we demonstrate that a member of the KIR cDNA family, designated NKAT4, encodes a 70-kDa receptor specific for HLA-A3.
We investigated the possibility that T helper cells might enhance the stimulatory function of dendritic cells (DCs). We found that ligation of CD40 by CD40L triggers the production of extremely high levels of bioactive IL-12. Other stimuli such as microbial agents, TNF-alpha or LPS are much less effective or not at all. In addition, CD40L is the most potent stimulus in upregulating the expression of ICAM-1, CD80, and CD86 molecules on DCs. These effects of CD40 ligation result in an increased capacity of DCs to trigger proliferative responses and IFN-gamma production by T cells. These findings reveal a new role for CD40-CD40L interaction in regulating DC function and are relevant to design therapeutic strategies using cultured DCs.
Germinal centers are sites of B cell activation in secondary lymphoid tissues. B cell memory clones and plasma cell precursors are generated within these dynamic microenvironments1,2. It is not clear how germinal center reactions are initiated but the following scenario is quite plausible. Following immune complex deposition on follicular dendritic cells (FDC), the formation of iccosomes occurs and appears to at least partially trigger the response3. Circulating antigen specific resting B cells then come into contact with the FDC and iccosomes, becoming activated to a state such that they effectively process and present antigen4. This event results in the genesis of T cell factors necessary for invoking the germinal center reaction.
This report outlines the B cell phenotype of transgenic mice that overexpresses the mouse CTLA-4-human gamma 1 (mCTLA4-H gamma 1) protein. Despite the fact that these mice prime CD4+ T cells (Ronchese, F., B. Housemann, S. Hubele, and P. Lane. 1994. J. Exp. Med. 179:809), antibody responses to T-dependent antigens are severely impaired. In contrast, T-independent responses are normal which suggests mCTLA4-H gamma 1 does not act directly on B cells, but acts indirectly by impairing T cell help. The impaired antibody defect is associated with impaired class switching, with low total immunoglobulin (Ig)G and antigen-specific IgG responses, and an absence of germinal center formation in spleen and lymph nodes but not gut-associated tissues. The defective germinal center formation is associated with a reduction in the degree of somatic mutation in hybridomas made from transgenic mice in comparison with those made from normal mice. It seems likely that mCTLA4-H gamma 1 exerts its effect by blocking an interaction between T and B cells that induce T cell help for B cells.
This study was designed to investigate whether follicular dendritic cells (FDC) can activate B cells to a state in which they can function as effective antigen-presenting cells (APC). High buoyant density (i.e., resting) B cells specific for 2,4-dinitro-fluorobenzene (DNP) were incubated with DNP-ovalbumin (OVA) bearing FDC, after which their capacity to process and present to an OVA-specific T cell clone was assessed. The efficacies of alternative sources of antigen and activation signals in the induction of B cell APC function were compared with those provided by FDC. Only FDC and Sepharose beads coated with anti-immunoglobulin (Ig)kappa monoclonal antibody provided the necessary stimulus. FDC carrying inappropriate antigens also induced B cell APC function in the presence of exogenous DNP-OVA. However, in circumstances where soluble DNP-OVA was limiting, FDC bearing complexes containing DNP, which could crosslink B cell Ig receptors, induced the most potent APC function. Analysis by flow cytometry revealed that within 24 h of coculture with FDC, a significant percentage of B cells increased in size and expressed higher levels of major histocompatibility complex class II. By 48 h, an upregulation of the costimulatory molecule, B7/BB1, occurred, but only when exposed to the FDC bearing DNP. Taken together, the results demonstrate that FDC have the capacity to activate resting B cells to a state in which they can function as APC for T cells. The stimuli that FDC provide may include: (a) an antigen-dependent signal that influences the upregulation of B7/BB1; and (b) possibly a signal independent of crosslinking mIg that results in Ig internalization. The relevance of these findings to the formation of germinal centers and maintenance of the humoral response is discussed.
We found that three tumor patients treated with mouse mAbs have T cells that recognize processed mouse Ig on autologous APC in a class II-restricted fashion, and we have shown that mouse mAbs directed against various cell surface molecules can be used as antigens to focus these T cells on an MHC class II-positive target of choice.
This study describes a general strategy to produce hybrid monoclonal antibodies that are capable of targeting human cytotoxic T lymphocytes (CTL) against any cell carrying the appropriate target antigen. This is done by fusing a HAT-sensitive, G418-resistant anti-T3 hybridoma with immune spleen cells (or with other hybridomas) that produce antibodies against the desired target antigen. In the hybrid hybridomas the reassortment of Ig heavy and light chains results in the production of bifunctional antibody molecules. Because of their double specificity, these antibodies are able to bridge human CTL to target cells and trigger cytotoxic function. We have isolated several stable hybrid hybridomas in which one specificity is against T3 and one either against HLA antigens (class II, DC-1, A3), human Ig (IgM, IgE, kappa), Toxoplasma gondii or an ovary carcinoma-associated antigen. In all of these cases we show that culture supernatants can efficiently and specifically target any CTL clone against any target cell that possesses the relevant surface antigen recognized by the antibody. Furthermore, the killing requires as little as 0.1 ng/ml of antibody, occurs at effector to target ratios comparable to those used in conventional cytotoxic assays and does not affect bystander cells. Nonspecific killing of Fc receptor-positive cells can be avoided using F(ab')2 fragments. As an example, we show that it is possible to change the major histocompatibility complex class and allospecificity of a CTL clone and target CTL against non-major histocompatibility complex antigens such as Ig, parasites and tumor-associated antigens.
A simple, rapid and sensitive microassay for mycoplasma detection in cell culture is reported. The assay is based on the fact that culture supernatants from contaminated cells inhibit [3H]thymidine incorporation by an IL-2 dependent mouse cytotoxic T cell line (CTLL).
The exact nature of T cells mediating delayed-type hypersensitivity (DTH) is still controversial1–3. Investigations in both human and animal systems suggested that T DTH cells have the same phenotype and MHC restriction as helper T cells4–6. This raises the question of whether or not helper activity and DTH can be mediated by the same activated T cell. In order to investigate this issue we took advantage of a clinical situation, Ni-contact dermatitis, which is considered an expression of pure DTH reaction. Representative T lymphocyte clones (TLC) isolated from two of these patients show the surface phenotype and in vitro function of T helper cells and produce high levels of γ-interferon (IFN-γ). In addition the simple chemical nature of this antigen may be useful for the analysis of T cell specificity and triggering requirements.
Ni-specific T lymphocyte clones (TLC) were isolated from two patients with Ni-contact dermatitis. All of the isolated TLC required both histocompatible antigen-presenting cells (APC) and Ni for induction of proliferation. By using a panel of HLA-typed Epstein Barr virus-transformed B cells (EBV-B cells) as APC and monoclonal anti-DR antibody, the clones were shown to recognize Ni in the context of HLA class II determinants. All of the clones that were isolated are OKT3+, OKT4+, OKT8-. In the presence of Ni, they polyclonally activate autologous B cells, and in the presence of Ni and autologous EBV-B cells, they produce IL 2 and very high levels of IFN-gamma. The Ni-specific clones should be helpful in the identification of the Ni-induced antigen which is recognized by T cells.
A myeloma line has been developed which produces no globulin chains of its own, has a duplication time of 8.7 h, fuses effectively with B-lymphoblasts and produces stable hybrids.