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Biomedical subjects

F W Fitch

Publications and source records attributed to F W Fitch.

At least 73 records · Page 4Linked to original sources

Anti-proliferative effect of IFN-gamma in immune regulation. I. IFN-gamma inhibits the proliferation of Th2 but not Th1 murine helper T lymphocyte clones.

A biphasic dose-response curve was observed when the IL-1-dependent HTL clone D10 was exposed to IL-1 plus supernatants from some activated T cell clones but not others. The active component that inhibited proliferation at high concentrations of these supernatants appeared to be IFN-gamma based on the following findings: 1) the biphasic pattern of responsiveness correlated with the presence of IFN-gamma in the supernatants; 2) an anti-IFN-gamma mAb augmented the proliferation of D10 cells to these supernatants; 3) rIFN-gamma inhibited profoundly the response of D10 cells stimulated with rIL-1 plus supernatant from activated D10 cells or with rIL-1 plus rIL-4; 4) the response of D10 cells to rIL-1 plus rIL-2 also was inhibited by rIFN-gamma, although to a lesser extent. The proliferation of an additional Th2 clone stimulated with rIL-1 plus rIL-4 or rIL-2 also was inhibited by rIFN-gamma, implicating IFN-gamma as an inhibitory lymphokine for Th2 cells in general. rIFN-gamma did not affect the proliferation of two Th1 clones, nor did it affect the proliferation of an unconventional HTL clone which produces both IL-4 and IFN-gamma and proliferates in response to IL-2 or IL-4 in an IL-1-independent fashion. The proliferation of D10 cells stimulated by Ag or by immobilized anti-CD3 antibody also was blocked by rIFN-gamma, whereas IL-4 production in response to these stimuli was unaffected, indicating that proliferation and not general cell function was specifically inhibited. Collectively, these data implicate IFN-gamma as a suppressive factor for the proliferation of the subset of HTL designated Th2, and suggest that the relative amounts of the various lymphokines present during an immune response may direct which T cell types increase in number.

Animals↗

Characterization of an anti-Ly-6 monoclonal antibody which defines and activates cytolytic T lymphocytes.

HK1.4 mAb was identified based on its ability to stimulate proliferation of cloned murine CTL. Within the lymphoid lineage, mAb HK1.4 bound exclusively to CTL, regardless of the expression of Lyt-2 or MHC restriction. HK1.4 mAb also bound to 40% of bone marrow cells and less than 5% of thymocytes from all mouse strains tested. Based on the tissue distribution of the determinant with which it reacted and the ability to cross-block binding of the anti-Ly-6 mAb H9/25, mAb HK1.4 appeared to react with a product of the Ly-6 locus. However, significant differences were observed between the properties of mAb HK1.4 and other, previously described anti-Ly-6 mAb. Cell proliferation and lymphokine release by cloned CTL were stimulated by culture with mAb HK1.4 alone or in the presence of non-stimulatory levels of IL-2. This proliferation and lymphokine release were not blocked by the addition of soluble anti-Lyt-2 or anti-IL-2R mAb. Activation induced by HK1.4 mAb proceeds in the absence of accessory cells, of cross-linking of the TCR, or the addition of mitogens or PMA. Stimulation of cells by anti-TCR mAb was not blocked by the addition of soluble HK1.4 mAb, and the stimulatory effects of HK1.4 and anti-TCR mAb were not additive. However, IL-2-driven proliferation of CTL clones was dramatically inhibited by the addition of HK1.4 mAb.HK1.4 mAb had no effect on Ag-specific or lectin-facilitated cytolysis. Taken together, these data indicate that mAb HK1.4 operates via an IL-2-independent pathway of activation that is also independent of the TCR.

Animals↗

Cellular pathways for rejection of class-I-MHC--disparate skin and tumor allografts.

We have investigated the relative roles of the Lyt-2+ and L3T4+ T lymphocyte subsets in rejection of class-I-MHC-antigen-disparate skin and tumor allografts. To deplete T cells in vivo, rat anti-Lyt-2 or anti-L3T4 monoclonal antibodies (mAb) were administered to adult-thymectomized (ATX) recipient mice prior to transplantation. BALB/c (H-2d) recipient mice rejected the Ia- Sarcoma I (Sa1) (H-2a) tissue culture-derived tumor after depletion of the L3T4+ T cell subset in vivo. In contrast, depletion of the Lyt-2+ T cell subset permitted lethal tumor growth in all recipient mice. To determine the role of particular T cell subsets in rejection of Ld class-I-MHC-antigen-disparate allografts, BALB/c skin was transplanted to BALB/c-H-2dm2 recipient mice. Skin grafts were rejected by control mice with a mean survival time (MST) of 14.5 days. The MST of skin grafts for mice treated with anti-L3T4 mAb was 16.6 days. In contrast, administration of anti-Lyt-2 mAb alone (MST = greater than 47 days) or together with anti-L3T4 mAb (MST = greater than 50 days) caused prolonged or indefinite graft survival in all recipient mice. Depletion of specific T cell subsets was confirmed by flow cytometric analysis and by analysis of T cell function in vitro. These results suggest that Lyt-2+ T lymphocytes are essential for rejection of class-I-MHC-disparate allografts; indirect presentation of alloantigen to L3T4+ T cells may not be necessary for rejection.

Animals↗

Characterization of the thyroid microsomal antigen, and its relationship to thyroid peroxidase, using monoclonal antibodies.

MAb directed to the thyroid microsomal antigen have been developed. All bound to 101- and 107-kD bands in Western blot analysis using thyroid microsomal fraction as antigen. The MAb also bound to microsomal proteins immunoprecipitated by serum from patients having a high titer of anti-microsomal antibody but no antibodies to thyroglobulin or thyrotropin-stimulating hormone receptor. The pattern of binding was related to the amount of reducing agent. The 101- and 107-kD bands were increased by addition of dithiothreitol whereas, in its absence, numerous bands of higher molecular weight were present, suggesting a multimeric protein structure. Despite the inability to immunoprecipitate thyroid peroxidase (TPO) enzymatic activity, the MAb bound intensively in Western blot to denatured purified hog TPO and to denatured immunopurified human TPO. Trypsin digestion of the 101-107-kD antigen produced a doublet of 84-88 kD that was still immunoreactive with MAb. One of five polyclonal sera tested (with a microsomal antibody titer greater than 1/20,480 measured by the tanned red cell hemagglutination technique) also recognized the 84-88 kD trypsin fragments. Addition of V8 protease led to a disappearance of the 107-kD protein, but not the 101-kD protein, proving that this antigen is formed by two different polypeptides. The MAb bound strongly to thyroid epithelium, whereas binding to papillary carcinoma was absent or low and moderate for follicular and Hurthle cell carcinoma. This study indicates that the thyroid microsomal antigen and TPO are identical and are constituted of two different polypeptides. On SDS-PAGE the antigen appears as two contiguous bands which share common epitopes but are not identical, as proven by their size and difference in susceptibility to proteolytic digestion. The immunoreactivity of the molecule is highly dependent on a trypsin-sensitive site, which appears important in the recognition of the antigen by polyclonal sera and may have biological importance. The expression of microsomal antigenicity is variable among various thyroid carcinomas.

Antibodies, Monoclonal↗

Interleukin 2 and concanavalin A stimulate interferon-gamma production in a murine cytolytic T cell clone by different pathways.

We identified a variant murine cytolytic T lymphocyte (CTL) clone which, in contrast to the parent clone and all other murine T cell populations tested, was found to have acquired spontaneously the ability to produce interferon-gamma (IFN-gamma) in response to recombinant interleukin 2 (rIL-2). IFN-gamma production in response to concanavalin A (Con A), which was characteristic of all T cell populations tested, was preserved in this variant. The IFN produced by the variant in response to either stimulus was active in both a macrophage-activating factor assay and an anti-viral assay. Both activities induced by either stimulus could be blocked by monoclonal anti-IFN-gamma antibodies. Upon Northern blot analysis using an IFN-gamma-specific cDNA probe, the IFN-gamma RNA isolated from variant cells stimulated with Con A or IL-2 were found to migrate equivalently. The unusual pattern of responsiveness in this variant CTL was exploited to compare the mechanisms involved in induction of IFN-gamma production by Con A or IL-2. Striking differences were observed. Unlike IFN-gamma production induced by Con A, IFN-gamma production induced by IL-2 was not accompanied by an elevation of intracellular Ca2+ levels, did not require physiologic extracellular Ca2+ levels, and was not inhibited by the immunosuppressive agent cyclosporin A. Thus, in this variant CTL clone, conditions that have ordinarily been associated in an obligate manner with lymphokine gene expression were found instead to be related to the specific mode of stimulation.

Animals↗

The inhibitory effects of K+ channel-blocking agents on T lymphocyte proliferation and lymphokine production are "nonspecific".

The effect of K+ channel-blocking agents, tetraethylammonium (TEA) and 4-aminopyridine (4AP), on the responses of cloned murine helper and cytolytic T lymphocytes stimulated with mitogen, anti-T cell receptor monoclonal antibody, or interleukin 2 was examined. The addition of TEA and 4AP reduced [3H]thymidine incorporation and lymphokine production to levels observed in unstimulated cells. However, thymidine incorporation by the tumor cell lines P-815 and SP2/0, which replicate autonomously, also was inhibited by these drugs. Treatment of cloned murine helper T lymphocyte, L2, with TEA appeared to inhibit uptake of [3H]thymidine and [3H]phenylalanine after stimulation with interleukin 2. These results suggest that the inhibitory effects of the K+ channel-blocking agents TEA and 4AP may not be specific for the sequence of events that are initiated by activation of T lymphocytes through the antigen receptor. Instead, the observed inhibitory effects by these agents may result from inhibition of transport of thymidine, amino acids, and other essential metabolites across the cell membrane.

4-Aminopyridine↗

Interleukin 2 inhibits antigen-stimulated lymphokine synthesis in helper T cells by inhibiting calcium-dependent signalling.

Certain L3T4+, Lyt-2- cloned murine helper T lymphocytes (HTL), when cultured with a high concentration of interleukin 2 (IL 2), become temporarily unresponsive to antigenic stimulation, as indicated by failure to proliferate and by reduced secretion of lymphokines when challenged with antigen. Exposure of cloned HTL to IL 2 also renders these cells less responsive to concanavalin A (Con A). Here we demonstrate that antigen-unresponsive HTL also accumulate reduced levels of lymphokine mRNA, thus indicating a pretranslational block of the response to antigen. However, HTL which had been pretreated with IL 2 and were unresponsive to antigen responded strongly to antigen + A23187 or to A23187 + PMA but failed to respond to antigen + PMA. With HTL made unresponsive to antigen or to Con A by exposure to IL 2, increases in intracellular calcium ion levels stimulated by Con A also were reduced. Thus, for mouse HTL clones, the IL 2-induced state of unresponsiveness to antigen or Con A appears to reflect an inability of such HTL to increase intracellular free calcium to a level sufficient for activation of lymphokine genes.

Animals↗

Antibodies to the L3T4 and Lyt-2 molecules interfere with antigen receptor-driven activation of cloned murine T cells.

When L3T4+ cloned murine helper T lymphocytes (HTL) are stimulated with antigen or immobilized anti-T cell receptor (TCR) monoclonal antibodies (mAb) at concentrations which are optimal for proliferation, anti-L3T4 mAb inhibits activation as measured by proliferation and lymphokine production. Under similar conditions, IL 2-independent proliferation of Lyt-2+ cloned murine cytolytic T lymphocytes (CTL) stimulated by anti-TCR mAb is inhibited by anti-Lyt-2 antibodies. Proliferation of cloned HTL and CTL cells stimulated by IL 2 is not affected by the anti-L3T4 and anti-Lyt-2 mAb. The inhibition of TCR-induced activation of the T cell clones is not due to interference with the binding of the anti-TCR mAb. Stimulation of the TCR has been proposed to induce lymphokine secretion and proliferation by T cells through a pathway involving the activation of protein kinase C and the stimulation of an increase in the concentration of intracellular free calcium. However, proliferation of T cells stimulated by PMA (which activates protein kinase C) plus the calcium ionophore A23187 (which increases the concentration of intracellular free calcium) is not affected by mAb reactive with the Lyt-2 or L3T4 structures. If TCR stimulation does indeed activate T cells by activating protein kinase and increasing intracellular free calcium, then our data suggest that anti-L3T4 and anti-Lyt-2 mAb inhibit TCR-driven proliferation at some step before the activation of protein kinase C and the stimulation of a rise in intracellular free calcium concentration. Our results suggest that anti-L3T4 and anti-Lyt-2 mAb interfere with early biochemical processes induced by stimulation of the TCR. In HTL, which proliferate via an autocrine pathway, anti-L3T4 mAb appears to inhibit proliferation by interfering with signaling events involved in lymphokine production. Inhibition of IL 2-independent proliferation of Lyt-2+ cells by anti-Lyt-2 mAb appears to occur by a different mechanism. The precise molecular basis for the interference of each cell type has not yet been characterized.

Animals↗

Inhibition of IL 2-driven proliferation of murine T lymphocyte clones by supraoptimal levels of immobilized anti-T cell receptor monoclonal antibody.

Both cloned murine helper T lymphocytes (HTL) and cytolytic T lymphocytes (CTL) proliferated and secreted lymphokines when stimulated with immobilized anti-T cell receptor monoclonal antibody (anti-TCR mAb). However, although proliferation of CTL increased and reached plateau levels as concentrations of anti-TCR mAb were increased, the proliferation of HTL decreased with high concentrations of anti-TCR mAb. A reduction of IL 2-dependent proliferation by CTL was observed when IL 2 was added to cultures of CTL in the presence of high concentrations of anti-TCR mAb, whereas IL 2-independent proliferation appeared to be unaffected by these concentrations of anti-TCR mAb. Inhibition of IL 2-driven proliferation caused by high concentrations of immobilized anti-TCR mAb did not seem to be mediated by soluble factors. Cells continued to express cell surface receptors for IL 2 and transferrin after treatment with immobilized anti-TCR mAb. Inhibition of IL 2-driven proliferation by high concentrations of immobilized anti-TCR mAb may represent a mechanism for regulating the proliferation of T lymphocytes. This inhibitory mechanism is initiated by stimulation of the T cell receptor, in this case by immobilized anti-TCR mAb, and is independent of other cells and factors.

Animals↗

Requirements for triggering of lysis by cytolytic T lymphocyte clones.

Cloned murine cytolytic T lymphocytes (CTL) having defined specificity were triggered by the phorbol ester together with a calcium ionophore (either A23187 or Ionomycin) to lyse syngeneic or third party target cells efficiently. Neither phorbol 12-myristate 13-acetate (PMA) nor calcium ionophore alone induced efficient lysis. The characteristics of the lytic process induced by these signals are similar to those of antigen-specific or lectin-facilitated lysis by CTL. Lysis is calcium and temperature dependent and shows kinetics which are not grossly different from lysis mediated via the antigen receptor. Two helper T lymphocyte clones were not induced to lyse efficiently EL-4 target cells by concanavalin A or PMA + ionophore. Triggering of lysis induced with PMA plus ionophore by the CTL clone L3 differed from antigen-mediated lysis in specificity and in the susceptibility to inhibition by cytochalasin B. Properties of the target cell determine which cell surface associative recognition structures are important in the efficient lysis of these cells. Anti-LFA-1 monoclonal antibodies inhibited efficiently both antigen-mediated and PMA + ionophore-induced lysis of P-815 or EL-4 target cells which are of hematopoietic origin. However, anti-LFA-1 antibodies do not inhibit antigen-mediated, lectin-facilitated, or PMA + Ionomycin-induced CTL cytolysis of target cells derived from the L cell fibroblast line. We conclude that two intracellular signals, which can be provided by the combination of PMA + ionophore, are required for efficient lysis by antigen-specific murine CTL clones. When the T cell receptor for antigen is bypassed using PMA + ionophore to trigger lysis, we show that Lyt-2 and LFA-1 molecules may be required for efficient lysis. These associative recognition structures appear to play an important role in postactivation steps leading to efficient delivery of the lethal hit to the target cell.

Animals↗

Susceptibility of astrocytes to class I MHC antigen-specific cytotoxicity.

Cell-mediated immune mechanisms contribute to tissue injury within the central nervous system (CNS) in a number of experimental diseases, including experimental allergic encephalomyelitis and some viral infections, and may mediate lesion formation in multiple sclerosis. We investigated the conditions under which murine astrocytes can become susceptible targets of cytotoxic T cells. We demonstrate that mouse astrocytes in vitro can be susceptible targets of class I major histocompatibility complex (MHC)-specific cytotoxicity mediated by L3 cytotoxic T lymphocytes (CTL). Expression of appropriate class I MHC antigen on the astrocytes is a requirement, because only cells bearing the H-2d phenotype are susceptible to lysis by L3 cells. BALB/c-H-2dm2 astrocytes lacking the specific determinant recognized by L3 cells are not susceptible to lysis. Astrocyte lysis can, however, occur under culture conditions in which MHC antigen expression is immunocytochemically low or undetectable. Cytolysis can be inhibited by pretreatment of the effector L3 cells with either anti-Lyt-2 monoclonal antibody (mAb) or anti-clonotypic mAb and by preincubation of the glial target cells with an appropriate anti-H-2 antibody (anti-H-2Ld). mAb to lymphocyte function-associated antigen does not inhibit cytotoxicity of the L3 clone against glial cells. Knowledge regarding the role of CTL within the CNS, including the surface molecules involved in glial cell lysis, could further the development of immunotherapies designed to effect immune reactivity within the CNS.

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Treatment with anti-T-lymphocyte antibodies prevents induction of insulitis in mice given multiple doses of streptozocin.

The importance of T-lymphocytes in the induction of insulitis and hyperglycemia in certain strains of mice treated with multiple subdiabetogenic doses of streptozocin has been a matter of controversy. To understand the role of T-lymphocytes, we treated thymectomized BALB/c ByJ mice with five daily doses of streptozocin (45 mg/kg) and determined the effect of treatment with monoclonal antibodies against T-lymphocyte subsets on the development of diabetes and insulitis. Hyperglycemia (mean glucose of 321 +/- 29 vs. 167 +/- 15 mg/dl in controls) and insulitis were induced in BALB/c ByJ mice given streptozocin. Thy1.2+, L3T4, and Lyt2+ cells were all identified within the islets of diabetic mice. There was a relative paucity of L3T4+ cells and an overabundance of Lyt2+ cells compared with the frequency of these cells found in lymphatic tissues or peripheral blood. Treatment with anti-L3T4 or anti-Lyt2 monoclonal antibodies caused a reduction in splenic T-lymphocyte subsets and attenuated the hyperglycemia to 212 +/- 14 and 197 +/- 16 mg/dl (P less than .001 and .01), respectively, compared with controls and prevented the insulitis induced by streptozocin. Our studies support the hypothesis that an immune response is important to the development of multi-low-dose streptozocin diabetes and indicate that treatment with monoclonal antibodies against the L3T4+ or Lyt2+ T-lymphocyte subsets can attenuate this process.

Animals↗

PMA alone induces proliferation of some murine T cell clones but not others.

The responses of cloned murine T cell lines to the phorbol ester, phorbol myristate acetate (PMA), were investigated. PMA alone was able to stimulate proliferation of some clones but not others. Two Lyt-2+, cloned cytolytic T lymphocyte (CTL) lines proliferated in response to stimulation by PMA alone, but several L3T4+, cloned helper T lymphocyte (HTL) lines did not. In contrast, all clones tested released lymphokines in response to stimulation by the combination of PMA and the calcium ionophore A23187. Moreover, all clones proliferated in response to stimulation by the combination of PMA and A23187. The proliferation of HTL in response to PMA + A23187 could be completely inhibited either by cyclosporine A (CsA) or by PC61.5, a monoclonal antibody directed against the murine IL 2 receptor; however, the proliferation of CTL in response to PMA alone was not affected either by CsA or by PC61.5. These results suggest that of the murine T cell clones tested, HTL proliferate in response to stimulation via an IL 2-dependent, autocrine pathway; in contrast, CTL, in addition to an IL 2-dependent pathway, may possess an additional IL 2-independent pathway of proliferation. CTL that proliferate in response to stimulation by PMA alone may be useful models in the study of T cell proliferation.

Animals↗

An antigen receptor-driven, interleukin 2-independent pathway for proliferation of murine cytolytic T lymphocyte clones.

Proliferation of T lymphocytes can be induced by IL-2, either through an autocrine pathway in which the responding cell produces its own IL-2 or through an exocrine pathway in which IL-2 secreted by Th stimulates proliferation of IL-2-dependent CTL. However, proliferation of at least some CTL clones, such as CTL L3 and CTL dB45, also can be induced by stimulation of the antigen receptor in the absence of IL-2. Stimulation of these cloned CTL with T cell-depleted allogeneic spleen cells, allogeneic tumor cells, or immobilized mAb reactive with the T cell antigen receptor (TCR) induced thymidine incorporation, entry into cell cycle, and secretion of macrophage activating factor, but these stimuli did not induce the secretion of IL-2. Several observations indicated that such proliferation of cloned CTL induced by stimulation of the TCR was independent of IL-2; IL-2 could not be detected in supernatants from stimulated CTL cells. mAbs reactive with the murine IL-2-R efficiently blocked IL-2-mediated thymidine incorporation in cloned CTL and Th, but had no inhibitory effect on TCR-driven thymidine incorporation in the CTL clones. TCR-driven thymidine incorporation in cloned Th L2 cells was profoundly inhibited by these antibodies, indicating the operation of an IL-2-mediated autocrine pathway for proliferation in this cloned Th. When antibodies to the TCR were used to stimulate cloned CTL and Th, IFN-gamma mRNA was easily shown in the cloned CTL and Th. Although IL-2 mRNA could be detected in the cloned Th, it was never observed in the cloned CTL. These findings provide evidence for the existence of a TCR-mediated, IL-2-independent pathway for induction of cellular proliferation in cloned murine CTL.

Animals↗

Role of L3T4 and Ia in the heteroclitic response of T cells to cytochrome c.

The activation of helper T lymphocytes has been proposed to result from the sum of low-affinity interactions between the specific immune receptor, as well as nonpolymorphic receptors such as L3T4 on the T cell surface, and nominal antigen and Ia displayed in a multivalent array on the antigen-presenting cell surface. The present work takes advantage of a T cell hybridoma specific for pigeon cytochrome c in the context of I-Ek, which responds to tobacco hornworm moth cytochrome c at one hundredth the concentration of the homologous antigen, to determine if the T cell's requirement for L3T4 and Ia is directly related to its functional affinity for antigen. The results demonstrate that the T cell's activation by pigeon cytochrome c was blocked by antibodies directed to L3T4 and to I-Ek, even at antigen concentrations twofold to fourfold above those required for maximal responses. In contrast, the response to tobacco hornworm moth cytochrome c was not as affected by these antibodies under equivalent superoptimal conditions. The same phenomenon was observed for the T cell's activation by the carboxyl-terminal peptide fragments of the two cytochromes c, which do not require processing, indicating that the differences were not due to the relative efficiency of processing and/or presentation of the antigens. Although both I-Ek- and L3T4-specific antibodies blocked the T cell response to pigeon cytochrome, antibodies to I-Ak had no effect, even though I-Ak had been considered to be a ligand for L3T4. Thus, either Ia does not bind L3T4 or, if it does, I-Ek must be a sufficient ligand for L3T4 for T cells that recognize their antigen in the context of I-Ek. These studies provide more definitive evidence that the T cell's requirement for the functions of Ia and of L3T4 is dependent on the T cell's functional affinity for its antigenic determinant. This data is consistent with a model of T cell activation in which, given a high enough affinity of the T cell receptor for the processed antigen, the requirement for other components of a stimulatory complex, such as Ia and L3T4, may diminish to undetectable levels.

Animals↗

Immunosuppressive effects of cyclosporin A on cloned T cells.

The effects of the immunosuppressive agent Cyclosporin A (CsA) on the immune response of T lymphocytes are not clearly understood. Much of the previous data are conflicting, possibly due to the study of bulk populations of cells. Therefore, we studied the effects of CsA on cloned murine helper T lymphocytes (HTL) and cytolytic T lymphocytes (CTL) after stimulation with Con A or with monoclonal antibodies to the cells' antigen receptors. In the HTL L2, proliferative responses and production of the lymphokines interleukin 2, interleukin 3, and interferon-gamma were blocked to background levels when CsA was added to cultures at a concentration of 0.1 to 1 microgram/ml. This inhibition of lymphokine production was found to occur at a pretranslational level, because the mRNA for these proteins was not detected when the L2 cells were stimulated in the presence of CsA. In addition, when CsA was added to cultures 3 hr after the cells had first been stimulated with the lectin Con A, levels of mRNA for the lymphokines isolated from the L2 cells 3 hr later were reduced approximately twofold. In the CTL L3, production of lymphokine (interferon-gamma) was also inhibited by CsA at a pretranslational level. However, proliferative responses to maximal stimulation with the clonotypic antibody 384.5 were not inhibited. In both HTL and CTL, the proliferative responses to recombinant IL 2 were not affected. To test whether CsA affects expression and function of the antigen receptor, we studied the effects of the drug on binding of anti-antigen receptor antibodies KJ 16-133 and 384.5 to the cell surfaces and the ability of L3 cells to lyse P815 target cells. At dosages which inhibited lymphokine production, CsA did not compete with binding of KJ 16-133 to L2 cells or 384.5 to L3 cells, as measured by flow cytometry, and the ability of L3 cells to lyse targets was unaffected. We conclude the following. CsA inhibits production of interleukin 2, interleukin 3, and interferon-gamma by L2 cells and interferon-gamma by L3 cells. This appears to occur as a result of a block in the transcription of the lymphokine genes. This pretranslational inhibition of lymphokine production can be invoked after transcription has begun. CsA does not affect expression of the T cell receptor for antigen as measured by monoclonal antibodies reactive with the receptors and by cytolytic activities of cytotoxic lymphocytes. CsA does not affect proliferative responses of HTL and CTL induced by interleukin 2.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Cloned helper T lymphocytes exposed to interleukin 2 become unresponsive to antigen and concanavalin A but not to calcium ionophore and phorbol ester.

Two cloned murine helper T lymphocyte (HTL) lines were used to investigate the immunoregulatory properties of highly purified interleukin 2 (IL2). The clone, designated J6.19, secretes lymphokines, including IL2, and proliferates when stimulated with ovalbumin in the presence of I-Ak-bearing spleen cells, while the alloreactive clone, L2, secretes lymphokines, including IL2, and proliferates when stimulated with Mlsa,d-bearing spleen cells. When either clone was exposed to a high concentration of pure IL2 for 1 to 2 days in the absence of either antigen or spleen cells, the HTL became unresponsive to rechallenge with antigen. Unresponsiveness to antigen was indicated by an inability of HTL to proliferate or secrete usual amounts of IL2 or colony-stimulating factor. Within 5-7 days after exposure to IL2, the cloned HTL again responded to antigen. Thus, in addition to being a growth factor for HTL, IL2 can limit the magnitude of the HTL response to antigen. L2 or J6.19 cells could also be induced to secrete lymphokines by the lectin, concanavalin A (Con A) or by a combination of the calcium ionophore, A23187, and phorbol myristate acetate (PMA). After exposure of L2 or J6.19 cells to sufficient IL2 to induce unresponsiveness to antigen, cells were also unresponsive to Con A, as indicated by a reduction in the level of lymphokines secreted. In contrast, lymphokine levels stimulated by A23187/PMA were comparable to those produced by cells not exposed to IL2. The failure of antigen to stimulate lymphokine release and proliferation by HTL previously exposed to IL2 therefore may result from an inability of HTL to recognize antigen or to transduce effectively the antigen recognition signal. Several T cell surface molecules are known to be involved in antigen activation of HTL; these include the antigen receptor and the "associative recognition" structures L3T4 and LFA-1. We observed that L2 cells, rendered unresponsive to antigen by exposure to IL2, expressed normal levels of antigen receptor, as identified by the monoclonal antibody, KJ16-133.18. Furthermore, expression of L3T4 and LFA-1 was not decreased. Unresponsiveness to antigen induced by IL2 thus could not be correlated with decreases in the expression of antigen receptors, L3T4, or LFA-1. Unresponsive HTL may therefore be capable of recognizing antigen but the signal generated by antigen binding may be attenuated during its transduction, resulting in the failure of cloned HTL to proliferate or secrete lymphokines at the usual levels.

Animals↗

Activation of lymphokine genes during stimulation of cloned T cells.

To study the regulation of lymphokine production by T lymphocytes, we have characterized the activation of lymphokine genes in T cells by measuring the levels of lymphokine mRNA in cloned murine T lymphocytes after stimulation. Lymphokine mRNA was not detected in cells taken after seven days of maintenance culture. Following stimulation of T helper lymphocytes L2 and AD9.1 with concanavalin A, lymphokine mRNA appeared, reached peak levels and disappeared over a 43-h time period. A single stimulation event resulted in the induction of mRNA for interleukin 2 (IL 2), IL 3 and interferon gamma. Maximal mRNA levels were generally found at 6 h in the T helper lymphocytes, but could occur as late as 18 h. The lymphokine genes were expressed coordinately; however, in these cloned cells, IL 2 mRNA levels appeared to be lower than the other two mRNAs. Lymphokine titers in the supernatant fluids paralleled the appearance of mRNA but IL 2 titers began to fall after 12 h probably because of utilization of this lymphokine by the activated cells. In the cytolytic T lymphocyte, L3, qualitatively similar kinetics were found after stimulation by lectin or a clonotypic antibody with peak mRNA levels occurring later (18 h) with the antibody. These studies indicate a single stimulating event activates the lymphokine genes of T cells in a coordinate manner; the appearance of the lymphokines in supernatant fluids represents de novo synthesis of these proteins but the levels of lymphokines measured in supernatant fluids reflects both production and utilization rates, and exposure to IL 2 at the time of stimulation is not essential for the production of other lymphokines.

Animals↗