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W Ptak

Publications and source records attributed to W Ptak.

At least 55 records · Page 3Linked to original sources

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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Antibody-activated immunoregulatory T cells are defective in B cell deprived mice.

We have previously shown that antibody bound to hapten-conjugated macrophages influences the contact sensitivity response to the hapten, the effect depending upon the isotype of antibody used. In the present experiments, we have examined the regulation of the contact sensitivity response of mice lacking B cells, in order to determine whether B cells and/or their products play a role in regulating such responses in situ. We have observed that contact sensitivity is normally induced in such B cell depleted mice, in contrast to the previously described failure of such mice to mount proliferative T cell responses to protein antigens. However, virtually all of the immunoregulatory activities previously defined in the contact sensitivity reaction, including those induced by antibody bound to hapten-coupled macrophages, cannot be elicited in these animals. In particular, intravenous injection of either hapten-coupled PEC, or antigen-antibody complexes of the IgG2a isotype on the surface of a hapten-coupled PEC (both of which induce unresponsiveness to contact sensitization in normal mice due to the activation of suppressor T cell activity) actually sensitize B cell deficient mice. Thus, we conclude that B cells or their products play a central role in the development and/or functioning of immunoregulatory cells involved in the control of contact sensitivity responses.

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The DTH-initiating Thy-1+ cell is double-negative (CD4-, CD8-) and CD3-, and expresses IL-3 receptors, but no IL-2 receptors.

The elicitation of delayed-type hypersensitivity (DTH) requires an early-acting Thy-1+ cell that produces an Ag-specific, non-MHC-restricted factor that initiates DTH by sensitizing the local tissue for release of the vasoactive amine serotonin. We characterized the phenotype of this DTH-initiating cell by treating cells from sensitized mice with different antibodies and then either with rabbit C or anti-Ig panning or bead separation to deplete various subpopulations. We then transferred these cells i.v. into naive recipients that were challenged to elicit DTH. Our findings indicate that the early DTH-initiating cell is Thy-1+, Lyt-1+, CD4-, CD8- and CD3-, whereas the classical, late DTH effector T cell is Thy-1+, Lyt-1+, CD4+, CD8-, and CD3+. We hypothesize that DTH-initiating cells are primitive T cells with Ag receptors that can bind Ag without MHC-restriction. This hypothesis was supported by the finding that two different antibodies, that both bind T cell-derived Ag-binding molecules, eliminated the DTH-initiating, cell but did not affect the late component, MHC-restricted CD4+, CD3+ T cell. Additional experiments with antibodies against restricted determinants of the T-200 glycoprotein family (CD45R) showed that the early but not the late cell is positive for B220, which is usually present on B cells, and on some activated T cells. Also, the DTH-initiating cell is Il-2R-, but Il-3R+; whereas the late component DTH T cell is IL-2R+ and IL-3-. Our findings suggest that DTH-initiating cells may be Ag-specific lymphoid precursor cells that arise before final differentiation along the pathway leading to mature T or B cells. Our results indicate that antigen-specific Thy-1+, CD3-, CD4-, CD8- cells function in vivo to initiate DTH reactions.

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Nude mice produce a T cell-derived antigen-binding factor that mediates the early component of delayed-type hypersensitivity.

The elicitation of delayed-type hypersensitivity (DTH) reactions in mice is caused by the sequential action of two different T cells. An early-acting, DTH-initiating T cell produces an Ag-specific T cell factor, that is analogous to IgE antibody and initiates DTH by sensitizing the local tissues for release of the vasoactive amine serotonin. In picryl chloride or oxazolone contact sensitivity, this T cell factor is Ag-specific, but MHC unrestricted. We, therefore, hypothesized that DTH-initiating T cells are primitive T cells with Ag receptors that can bind Ag without MHC restriction. In order to characterize the origin of this DTH-initiating T cell and the conditions that are necessary for its development, we contact-sensitized various strains of immunodeficient mice. Surprisingly, we found that the early phase of DTH was present in athymic nude mice. In contrast, the early component of DTH was absent in mice with severe combined immunodeficiency. These mice lack T and B cells, but have NK cells. These findings suggested that the early component of DTH was not caused by NK cells, and was caused by cells belonging to a lineage from a rearranging gene family. The early component of DTH in nude mice was Ag specific, was caused by MHC unrestricted Thy-1+ T cells, and was mediated by Ag-binding, Ag-specific T cell factors. We found that DTH-initiating, T cell-derived, Ag-binding molecules from nude mice and normal CBA/J mice had the same functional properties. The early component of DTH was elicited in two different systems (contact sensitivity and SRBC-specific DTH) in two strains of nude mice (BALB/c athymic nudes and CByB6F1/J-nu) from two different suppliers, but not in BALB/c and athymic nudes from a third supplier. From these findings we concluded that DTH-initiating T cells, which produce IgE-like Ag-specific T cell factors, are present in some strains of athymic nude mice and thus are relatively thymic independent T cells.

Aging↗

Prevention of tumor growth and enhancement of cell-mediated immunity by an antigen-specific contrasuppressor factor from a T cell hybridoma.

We have produced a contrasuppressor T cell hybridoma which has positive effects on multiple forms of cell-mediated immunity. First of all, it protects the adoptive transfer of contact sensitivity from suppressor cells and factors. In addition, TcsF modifies the response to normally tolerogenic administrations of hapten, leading mice to develop contact sensitivity and CTL activity instead of tolerance. Most relevant to this conference, mice which have been both treated with AF5.C6 TcsF and painted with TNCB resist challenge with highly malignant TNP-modified tumors. These experiments suggest a decisive role for contrasuppression in tumor rejection.

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Immunoregulatory role of Ig isotypes. I. Induction of contrasuppressor T cells for contact sensitivity responses by antibodies of the IgM, IgG1, and IgG3 isotypes.

A profound state of specific tolerance for the contact sensitivity reaction can be produced by i.v. exposure to hapten on the surface of syngeneic macrophages. When the same haptenated cells are incubated with specific antibody to form cell-bound Ag-antibody complexes, i.v. injection induces immunity rather than tolerance. We observe that such cell-bound Ag-antibody complexes induce not only effector cells for contact sensitivity but also hapten-specific contrasuppressor T (Tcs) cells, which are capable of rendering effector cells resistant to the inhibitory effects of Ts cells. Whereas the induction of the effector cells of contact sensitivity by cell-bound complexes required I region compatibility between the injected cells and the recipient, the induction of Tcs cells showed no genetic restriction. On the other hand, induction of contrasuppression required intact Fc on the complexed antibody, inasmuch as F(ab')2 fragments of specific antibody did not induce immunity. In addition, Tcs cells could also be induced by Ag-antibody complexes on opsonized TNP-mouse RBC treated with anti-TNP antibody. Immunity induced by cell-bound Ag-antibody complexes was observed only when antibodies of the IgM, IgG3, or IgG1 isotypes are used to generate the complexes. Further studies demonstrated that the Tcs cells induced in this way displayed the phenotype of Tcs cells described in other systems (Lyt-1+,2- I-J+, Vicia villosa lectin-adherent) and released a hapten-specific contrasuppressor factor. These studies indicate that Tcs cells can be induced independently of other T cells (such as the effector cells of contact sensitivity) and are likely to be responsible for some of the immunoregulatory effects of cell-bound Ag-antibody complexes. The role of antibody isotype in the induction of Tcs cells is discussed.

Adjuvants, Immunologic↗

Immunoregulatory role of Ig isotypes. II. Activation of cells that block induction of contact sensitivity responses by antibodies of IgG2a and IgG2b isotypes.

The influence that the isotype of Ag-specific antibody has on the induction of contact hypersensitivity (CS) has been investigated. Injection (i.v.) of mice with haptenated peritoneal exudate cells (PEC) pretreated with anti-hapten mAb of the IgG2a and IgG2b isotypes results in the activation of Ag-specific afferent acting Ts cells (Ts-aff). These suppressor cells are not generated when animals are injected with anti-hapten antibodies of other isotypes. The Ts-aff cells function to inhibit the generation of CS responses when injected into naive animals. Suppression is due to the induction of both Lyt-1+,2- I-J+ and Lyt-1-,2+ I-J+ T cells, both of which adhere to the lectin Vicia villosa. Attachment of both TNP and 4-ethoxymethylene-2-phenyloxazolone haptens to the same PEC, followed by treatment with an IgG2a anti-TNP antibody, generates Ts-aff cells specific for both 4-ethoxymethylene-2-phenyloxazolone and TNP. The MHC haplotype of the PEC is irrelevant, as allogeneic PEC will also induce Ts-aff cells when injected by using an identical protocol. Ts-aff cells cannot be generated in B cell-depleted mice, nor does the Ts-aff cells generated in normal mice suppress CS responses in B cell-depleted mice. These results show that Ag-antibody complexes bound on the surface of a PEC can induce potent afferent suppression in vivo. A possible general role for antibody isotypes in directing regulatory activities is discussed.

Adjuvants, Immunologic↗

The role of suppression in immunoregulation: in vivo analysis using a monoclonal antibody to T suppressor factors.

We have used a monoclonal antibody (mAb)-specific for murine T suppressor (Ts) cells (mAb 14-12) to study the role of T cells in tolerance and immunoregulation. We demonstrate that mAb 14-12 can block in vivo Ts cell activity in a variety of experimental systems. It prevents the induction of Ts cells induced by i.v. injection of the water-soluble hapten 2,4,6-trinitrobenzene sulfonic acid, and the protein antigen bovine serum albumin. When 14-12 mAb is given prior to the i.v. injection of trinitrophenyl-conjugated spleen cells (TNP-SC) it blocks the induction of Ts cells and sufficiently overcomes suppression so that TNP-SC is able to induce immunity. mAb 14-12 can convert nonresponder mice into responders for the Ir gene-controlled response to the random terpolymer L-glutamic acid60-L-alanine30-L-tyrosine 10 (GAT), and can substitute for cyclophosphamide in overcoming a suppressor barrier in the adoptive transfer of contact sensitivity. Administration of 14-12 mAb just prior to immunization results in the augmentation of contact sensitivity, antibody and plaque-forming cell responses. These results demonstrate the versatility of this reagent for the study of Ts cell activity.

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Sex differences in regulation of contact sensitivity reaction in mice. 1. Influence of sex on the generation of contrasuppressor and afferent suppressor cells.

It is well known that humoral and cell-mediated immune responses are better in females than in males. Females also develop autoimmunity more easily than males. Contact sensitivity, one of the forms of cell-mediated immunity, is controlled at the afferent and efferent phases by complex interactions of regulatory T cells. Our present experiments indicate that T suppressor afferent (Ts-aff) and T contrasuppressor cells (Tcs) are generated in the mouse in a sex-dependent fashion. These two types of regulatory cells are induced by antigen-antibody complexes containing various immunoglobulin isotypes. Females require fewer antigen (Ag)-IgG1 complexes to produce Tcs cells, but more Tcs cells after antigenic stimulation in females tips the balance toward better immune responsiveness. It remains to be established whether the peculiarities in generation of regulatory cells in female mice are relevant to the pathogenesis of autoimmune diseases which predominantly affect females.

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Contrasuppression and tumor rejection.

The growth of a highly progressive MCA-induced tumor 3152-PRO is dependent on the activity of suppressor T cells (Ts). Injection of syngeneic mice with antibodies specific for Ts leads to enhanced tumor transplantation resistance of the 3152-PRO tumor. In addition, injection of recipient mice with highly immunogenic regressor tumors conjugated with trinitrophenyl (TNP) activates a T cell population which also mediates protection to transplantation of TNP-conjugated 3152-PRO tumor cells. One such tumor, 1591-RE, was investigated in detail to determine the phenotype and biologic activity of this T cell population in overcoming Ts cell activity. Induction of transplantation resistance requires the presence of TNP hapten on both the highly regressive immunizing tumor (and not its progressor variant 1591-PRO4), and on the challenge tumor 3152-PRO. The cell population from TNP-1591-RE immunized animals which mediates protection against the transplantation of TNP-3152-PRO is Thy-1+, CD4+, 8-, Lyt1+, I-J+, and Vicia villosa lectin adherent, the identical phenotype to antigen-specific contrasuppressor T cells in the contact sensitivity (CS) response to TNP in vivo. A T cell population of identical phenotype from TNP-1591-RE immunized mice can overcome the effects of antigen-specific Ts cells on PCl-immune cells in the adoptive transfer of CS in vivo. These results suggest that immunoregulatory cells that mediate protection against progressive tumors may be identical in function to antigen-specific contrasuppressor T cells.

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Cellular interactions in the adoptive transfer of contact sensitivity: characterization of an antigen-nonspecific Vicia villosa-adherent T cell needed for adoptive transfer into naive recipients.

The adoptive transfer of delayed-type hypersensitivity (DTH) into naive recipients requires the interaction of two functionally distinct Ly-1+ T cells: and I-J- cell effector cell for DTH which transfers antigen-specific DTH only into animals whose suppressive mechanisms have been compromised, and and I-J+ cell which alone never transfers DTH but allows the transfer of DTH by the I-J- DTH effector cell into naive animals. We investigated the phenotypic and functional characteristics of the cell which "protects" the I-J- DTH effector cell from host suppressive mechanisms and allows the transfer of DTH into naive recipients. This cell was found to express the cell surface phenotype Lyt-1+,2-, L3T4+, and I-J+, and, in contrast to the I-J- DTH effector cell, was found to be adherent to the lectin Vicia villosa (VV). These cells routinely are found in the spleens of both immune or naive animals, and regardless of their origin are antigen-nonspecific in their functional activity in that they complement VV-nonadherent cells to transfer DTH responses of both TNP and oxazolone-primed cells. Treatment of recipient mice with cyclophosphamide (to remove host suppressor mechanisms) or Bordetella pertussis vaccine (which stimulates splenic T cells to circulate) abrogates the need for these cells in the transfer population, whereas treatment of donor mice with B. pertussis functionally depletes these cells from splenic T cell populations. Therefore, it appears that in the adoptive transfer of DTH responses, the antigen-specific I-J- VV-nonadherent cell requires an I-J+ VV-adherent cell in the circulation to overcome host suppressive mechanisms. The importance of these I-J+ cells in DTH responses is discussed.

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Mechanism of action of a T suppressor factor (TsF) in contact sensitivity: the T cell target for TsF activity in adoptive transfer of immunity is not effector cell.

The passive transfer of contact sensitivity (CS) by immune cells into normal animals requires the interaction of two distinct Ly-1+ T cells, one which is Vicia villosa lectin (VV)-nonadherent, the other which adheres to VV. Functional deletion of either cell type abrogates the adoptive transfer of CS into normal animals, whereas VV-nonadherent cells alone can transfer CS into animals pretreated with cyclophosphamide (Cy). An antigen-specific T suppressor factor, designated TNP-TsF, inhibits the transfer of CS into normal adoptive recipients. TNP-TsF mediates its suppressive activity by inducing an I-J+ subfactor (designated I-J2) from the assay population by the interaction of PC1-F (a TNP-binding subfactor of TNP-TsF) with antigen-primed Ly-2+ T cells. This I-J+ subfactor then complements TNBS-F (an antigen-nonbinding subfactor of TNP-TsF) to form an antigen-nonspecific effector molecule which suppresses DTH responses in an antigen-nonspecific fashion. We report here that TNP-TsF suppresses the adoptive transfer of CS into normal animals but not into animals pretreated with Cy. TNBS-F + I-J2, the effector complex of TNP-TsF, also suppresses the transfer of CS into normal but not Cy-treated animals. When the Ly-1 immune cells were separated into VV-adherent and -nonadherent populations, the TNBS-F + I-J2 suppressor complex suppressed the functional activity of the VV-adherent cell population, but not the VV-nonadherent cells. This suppressive activity correlates with the need for VV-adherent cells in the transfer of CS into normal but not Cy-treated recipients. When an I-J+ molecule (I-J1) from an SRBC-specific TsF was used in place of I-J2 to form a suppressor complex with TNBS-F, this TNBS-F + I-J1 TsF suppressed the transfer of CS into both normal and Cy-treated recipients. This difference in functional suppressive activity correlated with a difference in target cell specificity: TNBS-F + I-J1 suppressed the VV-nonadherent TDTH cell, whereas TNBS-F + I-J2 suppressed the VV-adherent T cell of CS. Immune cells which are transferred under conditions which do not require the VV-adherent cell for transfer are not suppressed by TNBS-F + I-J2 or TNP-TsF, but are suppressed by the TNBS-F + I-J1.(ABSTRACT TRUNCATED AT 250 WORDS)

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Isotype-like suppression of T cell-mediated immunity in vivo. I. Delayed-type hypersensitivity specificity of T cell suppression induced by antigen-binding T cell factors that initiate contact sensitivity.

A new form of immunoregulation is described that is based on the recent suggestion that the effector phase of delayed-type hypersensitivity (DTH) responses consists of a cascade of steps that are dependent on the sequential action of two types of antigen-specific Ly-1+ effector cells. According to this formulation, which is based on analysis of contact sensitivity (CS) in mice, DTH consists of at least two T cell-dependent steps that must occur in sequence. The first of these steps occurs within 2 hr of challenge and depends on DTH-initiating, antigen-binding, antigen-specific T cell factors that sensitize the tissues for an obligatory initial vasoactive step, which allows the antigen/major histocompatibility complex (MHC)-restricted, Ly-1+ effector T cells of classic 24 to 48 hr DTH responses to enter the tissues and produce chemoattractant lymphokines. We have now found that nonspecific suppression of CS responses can be induced by i.v. injection of these antigen-binding, CS-initiating T cell factors. Injection of the antigen-binding T cell factor induces Ly-2+, I-J-, cyclophosphamide sensitive, seemingly nonspecific suppressor T cells to inhibit initiation of CS responses. These suppressor cells do not affect the late-acting lymphokine-producing T cells, but probably act by preventing production of antigen-specific factors of the type that are required to initiate DTH responses. Furthermore, injection of CS-initiating antigen-binding T cell factors also induces suppression of sheep red blood cell (SRBC)-specific DTH, but does not affect classic anti-SRBC B cell responses, which are dependent on antigen/MHC-restricted Ly-1+ helper T cells; skin allograft rejection responses are also not affected. Thus, the suppression is DTH-specific. In addition, suppression induced by antigen-binding T cell factors is Igh and not MHC/H-2 restricted. These findings and data in the companion manuscript showing that these suppressor T cells act by production of soluble suppressor factors that bind to antigen-specific T cell factors of different antigenic specificities, cause us to suggest that the antigen-binding T cell factors are T cell isotype-like. Therefore, an isotype-like suppression is induced by these factors. This isotype-like suppression affects factor-producing cells of various antigenic specificities, may be mediated by T cell isotype-binding factors that are Igh restricted and block initiation of DTH responses, but does not affect conventional, antigen/MHC-restricted T cells, which may therefore have antigen receptors of a different isotype.

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Isotype-like suppression of T cell-mediated immunity in vivo. II. Suppression of the early component of contact sensitivity by a Ly-2+ T cell-derived suppressor factor that binds to contact sensitivity-initiating, antigen-specific, Ly-1+ T cell-derived factors that are of different antigen specificities.

Recognition that delayed-type hypersensitivity (DTH) reactions, such as contact sensitivity (CS) in mice, are initiated by Ly-1+ T cell-derived, antigen-specific factors has led to identification of a new kind of suppressor T cell that regulates this initiation phase of CS. Regulation by these suppressor T cells is T cell isotype-like in that initiation of DTH of various antigenic specificities is suppressed, whereas, Ly-1+ T cells mediating the antigen/major histocompatibility complex-restricted, classic delayed phase of CS responses are not affected, nor are other T cell activities. This study shows that these isotype-specific suppressor T cells probably act by release of soluble, isotype-specific, suppressor factors. These isotype-specific T cell factors bind to and can be eluted from columns linked with antigen-specific Ly-1+ T cell factors that initiate CS, and are of different antigen specificities. These T cell regulating, anti-isotypic suppressor factors are derived from Lyt-2+ I-J- T cells and suppress CS-initiating T cells, but do not affect the delayed-acting T cells of CS. This is in contrast with antigen-specific T cell suppressor factors that affect the late-acting and not the early-acting T cells of CS. It is suggested that the antigen-binding, CS-initiating, T cell factors, and their regulatory, anti-isotypic T cell factors are, respectively, T cell analogues of immunoglobulin(Ig)E antibody, and IgE-binding factors, that regulate IgE antibody production by IgE+ B cells.

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