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Biomedical subjects

W Ptak

Publications and source records attributed to W Ptak.

At least 19 recordsLinked to original sources

Gamma delta T cells assist alpha beta T cells in adoptive transfer of contact sensitivity.

Cutaneous immune responses to contact sensitizers such as picryl chloride or oxazolone, are classical manifestations of T cell-mediated immunity in vivo. In fact, the first documentation of T cell-mediated immunity was the ability to adoptively transfer contact sensitivity (CS) responses. Although it is now clear that Ag/MHC-restricted alpha beta TCR positive effector T cells are responsible for 24 to 48 h CS responses, other subsets of Thy-1+ cells in mice also participate in the elicitation of CS. Thus, Thy-1+, CD5+, CD3-, B220+, hapten-specific, non-MHC-restricted early-acting cells are required to initiate CS responses by leading to local serotonin release, which allows for extravascular recruitment of the late-acting, alpha beta TCR+, CS effector T cells. This study describes another T cell population that is needed for the adoptive transfer of CS by alpha beta T cells. In vitro treatment of a mixture of CS effector cells with hamster mAb to gamma delta TCR, together with rabbit complement, or by panning on anti-hamster Ig-coated dishes, diminished substantially the subsequent transfer of CS reactivity without affecting either CS-initiating cells, or the later-acting, alpha beta TCR+ CS effector T cells. Immune cells treated with anti-alpha beta TCR mAb, or recovered as adherent cells from petri dishes after anti-gamma delta TCR panning (i.e., gamma delta TCR-enriched cells), reconstituted the ability of anti-gamma delta TCR-treated immune cells (i.e., alpha beta TCR-enriched cells) to transfer 24-h CS responsiveness. The phenotype of the gamma delta T cells that assisted CS effector alpha beta T cells was: CD3+, CD4-, and CD8+. The gamma delta T cells that assisted alpha beta T cells were not Ag-specific since anti-alpha beta-TCR-treated cells (gamma delta T-enriched) from picryl chloride immunized donors aided alpha beta T cells (anti-gamma delta TCR-treated) from oxazolone-immunized donors, and conversely gamma delta T cells from oxazolone-immunized donors aided alpha beta T cells from picryl chloride immunized donors. Furthermore, the CS-regulating gamma delta T cells were not MHC-restricted because gamma delta T cells from H2d or H2b donors could assist alpha beta T cells from H2k donors. It was concluded that a regulatory population of non-Ag specific, non-MHC-restricted gamma delta T cells was needed to assist immune effector, Ag/MHC-specific alpha beta T cells in the adoptive transfer of CS.

Animals

Regulation of contact sensitivity reaction: contrasuppressor T cells and contrasuppressor factor downregulate efferent T suppressor cells.

Contact sensitivity (CS) reaction mediated by CD 4+8- Th 1 cells is under the control of several antigen-specific regulatory lymphocytes. Reaction is downregulated at the induction stage by T afferent suppressor T cells (Ts-aff) that prevent immunization and at the effector stage by efferent T suppressor cells (Ts-eff) that made immune Th 1 cells inoperative. Both suppressor cells are CD 4-8+ Th 1 effector cells and are protected against the suppressive action of Ts-eff cells by CD 4+8- contrasuppressor T cells (Tcs). As has been already shown there are also regulatory interactions between regulatory cells themselves and Ts-aff cells in addition to their effect on precursors of Th 1 cells, also preventing the induction of Ts-eff cells. The present experiments extend these findings and demonstrate that Ts-eff cells are also under negative control of Tcs lymphocytes. Likewise, antigen-specific factor produced by contrasuppressor T-T cell hybridoma, used in lieu of Tcs cells, impedes the activation of Ts-eff cells. In both cases regulation is aimed at the precursors of Ts-eff cells. Our experiments demonstrate that the outcome of immunization is dependent not only on the balance between immune cells and regulatory cells, but also on interactions between regulatory cells themselves.

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Initiation of delayed-type hypersensitivity by low doses of monoclonal IgE antibody. Mediation by serotonin and inhibition by histamine.

Elicitation of delayed-type hypersensitivity (DTH) responses by DTH effector T cells requires a prior phase of DTH initiation. This consists of an immediate hypersensitivity-like response mediated by Ag-specific DTH-initiating factors that are analogous to IgE antibodies in that they sensitize tissue mast cells for release of the vasoactive amine serotonin (5-HT). Experiments were conducted to determine whether IgE mAb injected i.v., or 5-HT injected locally, could initiate DTH. It was found that small doses of IgE (1 microgram/mouse), or of 5-HT (50 to 500 ng locally), which mediated small immediate responses, were optimal for DTH initiation. Even lower doses of IgE (10 ng/mouse), or of 5-HT (5 ng locally), which did not mediate macroscopically measurable immediate responses, were capable of DTH initiation. Higher doses of IgE (10 to 100 micrograms/mouse), which mediated large immediate responses, were not able to initiate DTH. A similar dose response for DTH initiation was found with IgG1 mAb, which is another mast cell-sensitizing isotype of Ig. The inability of high doses of IgE or IgG1 to mediate DTH initiation was probably caused by local release of large inhibitory amounts of histamine, because systemic treatment with the histamine-2 receptor antagonist cimetidine allowed high doses of IgE to initiate DTH. Thus, IgE and IgG1 antibodies could initiate DTH via release of small amounts of 5-HT, but simultaneous release of large amounts of histamine were inhibitory, probably via an effect on histamine-2 receptors of recruited T cells. We concluded the following: 1) IgE or IgG1 antibodies can initiate DTH; 2) DTH initiation need not be associated with macroscopically detectable early responses; 3) mast cell release of 5-HT acts positively whereas release of histamine acts negatively in murine DTH; 4) Ag-specific factors are not the only mechanism of DTH initiation.

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Delayed-type hypersensitivity initiation by early-acting cells that are antigen mismatched or MHC incompatible with late-acting, delayed-type hypersensitivity effector T cells.

The elicitation of delayed-type hypersensitivity (DTH) responses in mice is mediated by the sequential activities of two different Ag-specific, Thy-1+ cells. A required early phase of elicitation is due to DTH-initiating Thy-1+ cells that are CD3- and sIg- and produce Ag-specific factors that act like IgE antibodies in that they sensitize the tissues, so that after local challenge with Ag there is release of the vasoactive amine serotonin. Released serotonin locally recruits and activates CD4+ Th-1 classical DTH effector T cells that secrete lymphokines that attract and activate a nonspecific perivascular infiltrate of circulating, bone marrow-derived leukocytes. The current study used isolated subpopulations of DTH-initiating and DTH-effector T cells to determine whether the two phases of the elicitation of DTH were entirely separate. The contact sensitivity model of DTH was used. Early-acting DTH-initiating cells, and late-acting DTH-effector T cells were either from oxazolone (OX)-immune or picryl chloride (PCl)-immune CBA or BALB/c donors and were transferred to CBA or BALB/c recipients. The results showed that DTH-initiation could be mediated by polyclonal DTH-initiating cells that were Ag mismatched or MHC incompatible with late-acting DTH effector T cells. In fact DTH-initiating cells could be both Ag mismatched and MHC incompatible with late-acting T cells. In addition, potential interactions between different cell populations were ruled out by showing that DTH-initiation could be mediated by a DTH-initiating clone that was Ag or MHC mismatched with the late-acting DTH-effector T cells. Thus, the OX-specific BALB/c clone could initiate DTH for PCl-specific CBA cells in CBA recipients if the recipients were challenged with both OX and PCl, but not when they were challenged with OX or PCl alone. We suggest, at least for the elicitation of DTH reactions in mice, that a more comprehensive description of these responses should accommodate the fact that there are early and late phase responses that each begin with Ag specificity and end with non-specific humoral factors. Inasmuch as the two Thy-1+ cells of DTH can be of different Ag specificity, this suggests that some forms of delayed and chronic inflammation, might be initiated by an immediate hypersensitivity-like immune reactivity to one set of Ag, and could be prolonged and perpetuated by delayed reactivity to another set of Ag.

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Regulatory responses in contact sensitivity: afferent suppressor T cells inhibit the activation of efferent suppressor T cells.

Two types of suppressor cells regulate the contact sensitivity (CS) response to picryl chloride (PCL). Afferent suppressor T cells (Ts-aff) inhibit the generation of CS responses to PCL, while efferent suppressor T cells (Ts-eff) inhibit the activity of Th 1 cells that mediate CS reaction. Intravenous injection of mice with TNP-substituted peritoneal exudate cells (TNP-PEC) induces Ts-eff cells that block the adoptive transfer of contact sensitivity. The induction of Ts-eff cells is prevented by the presence of Ts-aff cells, which in turn are induced by the injection of TNP-PEC coupled with antibodies of the IgG2a and IgG2b isotype (TNP-PEC-Ab). If an animal is injected with TNP-PEC prior to or simultaneously with TNP-PEC-Ab, it generates only Ts-aff cells, while if it is injected with TNP-PEC alone or TNP-PEC prior to TNP-PEC-Ab, it generates Ts-eff cells. Ts-aff cells effect only the generation of Ts-eff cells, as the addition of Ts-eff cells to assays for Ts-eff cells has no inhibitory effect on the suppressive effects of Ts-eff cells in adoptive transfer. Our experiments show that Ts-aff cells induced by TNP-PEC-Ab are phenotypically either Lyt 1+2- or Lyt 1-2+, but only the latter inhibit the generation of Ts-eff cells in vivo. The Ts-aff cells that inhibit Ts-eff activity adhere to the lectin Vicia villosa (VV), while Ts-eff cells are VV nonadherent. In addition, Ts-aff cells can prevent the generation of Ts-eff to linked haptens presented on the same PEC. It appears that a cascade of Ts cell interactions are involved in the regulation of CS responses.

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Serotonin initiation of delayed-type hypersensitivity: mediation by a primitive Thy-1+ antigen-specific clone or by specific monoclonal IgE antibody.

Elicitation of delayed-type hypersensitivity (DTH) responses is due to the required sequential action of two different antigen (Ag)-specific Thy-1+ cells: early acting, DTH-initiating cells and locally recruited CD4+, alpha beta-TCR+, DTH effector T cells. DTH-initiating cells have an unusual phenotype for Ag-specific cells (Thy-1+, CD5+, CD4-, CD8-, CD3-, sIg-, B220+ (CD45RA+), Mac 1+, IL-2R- and IL-3R+) and act by producing Ag-specific non-IgE factors that sensitize mast cells for release of the vasoactive amine serotonin (5HT) at the local site of elicitation of DTH by challenge. Another mechanism of DTH initiation involves Ag-specific IgE antibodies that also can sensitize mast cells for local serotonin release. Serotonin initiates DTH by activating the local endothelial cells to allow recruitment of DTH effector T cells, and also by activating 5HT-2 receptors on these recruited T cells.

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Suppression and contrasuppression in athymic nude mice: nude mice produce the antigen-specific component of a T suppressor factor that inhibits the late 24-hr phase of DTH but do not generate suppression nor contrasuppression of the early initiating phase of DTH.

Previous studies demonstrated that the initiation of murine delayed-type hypersensitivity (DTH), as exemplified by contact sensitivity induced by picryl chloride (PCI) or oxazolone (OX), is due to antigen-specific, T cell-derived, DTH-initiating factors called, respectively, PCl-F and OX-F. These factors participate in the extravascular recruitment of CD4+, Th-1, DTH effector T cells in the elicitation of DTH. Related factors also participate, together with nonantigen binding factors derived from CD8+ T cells, to constitute an antigen-specific T cell-derived suppressor factor (TsF) that can down regulate the ability of Th-1 effector T cells to mediate DTH. Since it was shown recently that athymic nude mice can make antigen-specific, DTH-initiating T cell factors, the current study tested whether nude mice also could produce the antigen-specific component of the TsF that suppresses DTH effector T cells. We found that antigen-specific factors from nu/nu mice could complement the nonantigen-binding subfactor produced in normal mice to constitute the whole antigen-specific TsF. Additional studies showed that the successful adoptive cell transfer of DTH-initiating T cell activity from nude mice into normal mice required cyclophosphamide treatment of the recipient. In contrast, transfer of DTH-initiating cell activity from nu/+ mice did not require cyclophosphamide treatment of the recipients. We hypothesized that nude mice lacked contrasuppressor cells. Although nude mice were able to manifest the early, initiating phase of DTH, we found that there was no suppression of early DTH-initiating T cells in nude mice, compared to nu/+. Therefore the production of DTH-initiating T cell factor could be boosted in nude mice. The ability to boost DTH-initiating cells in nude mice should facilitate the development of cell lines and clones with the ability to initiate DTH.

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Generation of a T-cell hybridoma producing a contrasuppressor factor for contact sensitivity.

C3H/HeN mice were immunized to induce contrasuppressor T-cell (Tcs) activity, splenic T cells from these mice were fused with the BW5147 thymoma, and the resulting hybridomas were tested for their ability to produce a contrasuppressor T-cell factor (TcsF). Nine TcsF-producing hybridomas were preliminarily identified by their ability to inhibit the effect of antigen-specific suppressor T-cell factor (TsF) on the adoptive transfer of contact sensitivity. One of these hybrids, AF5.C6, was cloned, the production of a contrasuppressor factor confirmed, and the high-titred TcsF produced by this cloned hybrid characterized. Hybridoma-derived TcsF is antigen-specific and specifically binds its antigen, but does not bear immunoglobulin (Ig) determinants. Thus, hybridoma-derived TcsF is serologically and functionally identical to an antigen-specific contrasuppressor factor for contact sensitivity, whose production from splenocyte cell cultures has previously been described. The generation of a hybridoma secreting a contrasuppressor factor identical to that produced by spleen cells significantly strengthens the hypothesis that the phenomenon of T-cell contrasuppression is mediated by a specific subset of cells whose activity is contrasuppressive. The further advantages of employing T-cell hybridomas for functional, biochemical and molecular genetic analyses of contrasuppression are also discussed.

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Ontogeny of cells involved in the suppressor circuit of the immune response.

Some macrophage (M phi) cell surface structures which bind T cell-derived factors remain intact after the M phi are killed by heating at 56 degrees C (but not 72 degrees C) for 45 min. As a result, appropriately killed M phi (HK M phi) can act as competitive antagonists for those M phi functions which are involved in binding and active presentation of T cell-derived regulatory signals. By blocking the transmission of these signals with HK M phi, we have found that the spleens of newborn mice contain considerable numbers of "latent" helper cells whose activity is not ordinarily seen because it is overridden by suppressor mechanisms. Similarities between these neonatal helper cells and a subset of adult T helper "inducer" cells (cell surface phenotype Ly-1+; Ly-2-, 3-; IJ+; Qa 1+), whose activity appears in significant numbers only after immunization, are described.

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Intermediary role of macrophages in the passage of suppressor signals between T-cell subsets.

We have examined the ability of macrophages (Mphi) to transmit T-cell derived suppressor signals to other T cells. The suppressor signal studied is an antigen-specific factor which suppresses the ability of adoptively transferred, sensitized lymphocytes to express contact hypersensitivity in normal recipients. We have found that this factor binds to peritoneal exudate Mphi via cell surface structures which can be blocked with heat-aggregated gamma globulin. Dead (HK) Mphi bind the factor but fail to present it in a functional way to assay (immune) T cells, whereas live (L) Mphi perform both functions. Further, L Mphi can retrieve the factor in an active form from the surfaces of HK Mphi. Based on these and other findings (1-5), we discuss the possibility that Mphi may play as important a role in presenting T-cell communication signals to the cells of the immune system as they do in presenting antigen.

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Splenic suppressor cells in fetal and newborn mice.

Newborn mice are refractory to sensitization with picryl chloride and the graft versus host reaction (GvHR) in F1 fetal mice injected with parental lymphocytes is markedly reduced. Moreover, spleen cells (but not thymic lymphocytes) of fetal or newborn animals are able to suppress the cell-mediated immune responses, contact sensitivity (CS) and GvHR in a variety of experimental situations. The inhibitory cells are thy-positive and their suppressive activity wanes early after birth.

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Modification of the activity and surface topography of peritoneal macrophages by cytophilic antibody.

Cytophilic antibody (Cab) attached to the macrophage surface substantially changes the cell surface relief as tested in the scanning electron microscope. Diffuse loss of surface structure is accompanied by diminished ability to interiorize opsonized sheep erythrocytes and to damage non-specifically bystanding target cells (chicken erythrocytes). Cross-linking of Cab on the macrophage surface by antigen or antibody partially restores macrophage membrane activity.

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Split unresponsiveness to trinitrophenyl (TNP) determinant. Suppression of anti-TNP antibody responses by sensitization with picryl chloride.

Contact sensitization by epicutaneous application of picryl chloride causes in mice a significant reduction of the antibody responses to immunogenic TNP-conjugates. This split unresponsiveness is along-lasting. It was found that hapten applied on the skin became attached to the serum proteins and the transfer of such a serum into normal recipients, while not influencing the ability of these animals to become contact-sensitized to PCl, rendered them unable to mount the anti-TNP antibody response. Possible mechanisms of split unresponsiveness to the TNP determinant induced by PCl treatment are suggested.

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The immunopotentiating effect of thiosulphate in vivo.

Sodium thiosulphate injected i.v. into mice causes a marked increase in concentration of several serum proteins, particularly immunoglobulins. When given together with antigen, it significantly potentiates the T-dependent humoral responses.

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Split unresponsiveness to the trinitrophenyl determinant. I. Manoeuvers which suppress either humoral or cell-mediated immune responses.

2,4,6-Trinitrobenzene sulfonic acid (TNBS) injected intravenously (i.v.) makes mice fully tolerant to the trinitrophenyl (TNP) determinant. Administration of in vitro TNP-labeled syngeneic erythrocytes or thymocytes renders mice unable to develop contact sensitivity to picryl chloride, while the humoral anti-TNP responses seem to be unaffected. The reverse was found after pretreatment of mice with TNP-labeled isologous IgG (MGG) since only anti-TNP antibody responses, but not contact sensitivity to picryl chloride, were significantly reduced. TNP-coupled macrophages given to animals suppressed both the cell-mediated and humoral responses, and this might be due to the presence on their surface of TNP-labeled cytophilic antibody. TNBS administered i.v. binds to circulating proteins and formed blood elements. Thus the split unresponsiveness affecting either humoral or cell-mediated compartments after the injection of TNP-MGG or of haptenated cells respectively, is presumably due to dissecting events which in vivo after the injection of TNBS, occur simultaneously. These results may be interpreted to indicate that split unresponsive states to TNP determinants are mediated two independent mechanisms which require different tolerogen presentations to be triggered.

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