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H K Ziegler

Publications and source records attributed to H K Ziegler.

At least 19 recordsLinked to original sources

Listeria monocytogenes activation of human peripheral blood lymphocytes: induction of non-major histocompatibility complex-restricted cytotoxic activity and cytokine production.

Gram-negative bacteria have been shown to activate human natural killer (NK) cells. In this report, we show that the gram-positive bacterium Listeria monocytogenes can also activate human NK cells with regard to non-major histocompatibility complex (MHC)-restricted killing and the production of cytokines. Overnight incubation of peripheral blood mononuclear (PBM) cells or enriched NK cell populations with live or Formalin-fixed L. monocytogenes resulted in high levels of non-MHC-restricted cytotoxic activity. Listeria-stimulated non-MHC-restricted cytotoxic activity could be achieved with pathogenic as well as nonpathogenic Listeria strains. PBM cells also produced tumor necrosis factor alpha and different interferons (IFNs) after incubation with Listeria strains. Optimal cytokine production appeared to be dependent on nylon wool- and plastic-adherent cells. Different IFNs were produced by Listeria-stimulated PBM cells obtained from different donors. IFN-gamma was always produced but was sometimes associated with IFN-alpha and/or IFN-beta. Interleukin-2 (IL-2) activity was never detected in culture supernatants obtained from Listeria-stimulated PBM cell cultures. However, IL-2 appeared to be produced by Listeria-stimulated PBM cells, since antibody to IL-2 inhibited Listeria-stimulated NK cell cytotoxic activity. Listeria activation of NK cell cytotoxic activity was also dependent on tumor necrosis factor alpha production. Antibody to IFN-gamma, IFN-beta, or IFN-alpha had no effect on Listeria-stimulated NK cell cytotoxic activity. These results demonstrate that NK cells can be activated by Listeria strains and add further evidence that NK cells may play an important role in host defense against bacterial infections.

Cytokines

Role of bacterial hemolysin production in induction of macrophage Ia expression during infection with Listeria monocytogenes.

The production of a hemolytic exotoxin (Hly) termed listeriolysin O (LLO) is a major determinant of the virulence of the Gram-positive bacterium Listeria monocytogenes. As determined by lethal inoculum size, LLO- strains of L. monocytogenes generally are several orders of magnitude less virulent than their LLO+ counterparts. The generation of protective anti-Listeria T cell immunity also has been shown to depend on the LLO phenotype of the bacteria present during primary infection, although the cellular basis of this observation is not known. The experiments described here address the role of LLO in regulation of the expression of class II MHC (Ia) molecules by murine macrophages. Because Ia expression by macrophages and other APC is thought to be a central factor in the generation of T cells specific for bacterial Ag, we have tested the hypothesis that the failure of LLO- strains to elicit anti-Listeria T cell responses might be secondary to an inability of these strains to stimulate increases in macrophage Ia levels. Our results show that the macrophage Ia response after i.p. injection of L. monocytogenes correlates strongly with the LLO phenotype of the bacteria. The presence of LLO+ organisms, even at very small numbers (as few as 10), elicits a striking increase in Ia expression by peritoneal macrophages. In contrast, even at very high numbers (up to 10(6) per mouse), LLO- bacteria fail to stimulate a strong Ia response. We also have analyzed macrophage Ia expression after injection of lysates of Escherichia coli expressing recombinant LLO protein. Similar to the results obtained with LLO+ and LLO- L. monocytogenes, we have observed Ia induction only with LLO+ lysates. Ia induction by this crude recombinant LLO preparation can be inhibited by cholesterol or heat. Furthermore, supernatants derived from cultures of LLO+ (but not LLO-) L. monocytogenes can cause Ia induction when administered via i.p. injection. Taken together, these findings suggest that the failure of macrophages to respond to LLO- organisms with an increase in Ia expression may be a major underlying cause of the failure of these bacteria to induce Listeria-specific protective T cell immunity. Furthermore, we propose that the induction of macrophage Ia expression in response to bacterial toxins such as Hly may represent one component of a set of early, innate immune mechanisms, and that this induction may provide a critical "bridge" to later, acquired, Ag-specific immune processes.

Animals

Lipopolysaccharide responsiveness is an important factor in the generation of optimal antigen-specific T cell responses during infection with gram-negative bacteria.

We previously have found that the endotoxin (LPS) of Gram-negative bacteria is a major determinant of macrophage Ia induction during infection with these organisms. Specifically, i.p. injection of Gram-negative bacteria elicits a striking macrophage Ia response in LPS-responder mice but virtually no response in LPS-low-responder mice. As an extension of these findings, in this report we have tested the hypothesis that the inability of LPS-low responder mice to mount an Ia response during Gram-negative infection may in turn impair their capacity for generation of appropriate antibacterial T cell responses. Our results demonstrate that for a variety Gram-negative organisms (Salmonella typhimurium, Salmonella minnesota, and Escherichia coli), both macrophage Ia induction and the generation of Ag-specific T cell responses are controlled by the lps gene. We also have asked whether the expression of additional toxins (other than LPS) by infecting Gram-negative organisms can "override" this lps gene control of macrophage and T cell responses. We have found that infection of LPS-low-responder mice with an E. coli strain that expresses a hemolytic exotoxin (Hly) leads to the induction of macrophage Ia expression as well as the generation of T cell responses to both the Hly molecule and to other E. coli-associated Ag, whereas no responses are generated during infection with a Hly- strain. This result suggests that LPS-low responder mice have no inherent defect in T cell responsiveness to Gram-negative bacterial Ag but rather that these mice fail to receive an LPS-mediated signal required for the induction of Ia expression and subsequent generation of peritoneal T cell immunity. These findings, when taken together with results presented in the accompanying paper, strengthen the argument that bacterial toxin production (and the ability of the host to respond to the toxin) can represent a critical determinant of the induction of macrophage Ia expression and in turn, of Ag-specific T cell responses during bacterial infection.

Animals

Role of listeriolysin-O (LLO) in the T lymphocyte response to infection with Listeria monocytogenes. Identification of T cell epitopes of LLO.

Using a murine model, we investigated the role of the bacterial exotoxin listeriolysin O (LLO) in cellular immunity to Listeria monocytogenes. A correlation between LLO production by infecting bacteria and generation of protective immunity to virulent LLO-producing bacteria was noted. Using isogeneic hemolysin (Hly+ or Hly-) strains of L. monocytogenes, we demonstrated that LLO production by infecting bacteria is required to elicit T cells reactive both to bacteria-associated Ag and to the secreted LLO molecule as measured by IL-2 production in vitro. Distinct sets of T cells specific for largely nonoverlapping pools of antigenic determinants represented by LLO and cell-associated Ag (heat-killed L. monocytogenes) are generated after infection. We have used models for prediction of T cell epitopes based on primary structure of LLO, and synthetic amphipathic LLO peptides were evaluated as Ag in vitro or as immunogenes in vivo. Infection of several strains of mice (H-2k and H-2d) with LLO-producing L. monocytogenes resulted in the generation of T cells that could respond consistently to two peptides, LLO 215-234 and LLO 354-371. Mouse strains lacking expression of I-E molecules (e.g., B10.A(4R) and C57BL/6) responded to LLO but not to the peptides tested. With C3HeB/FeJ mice, antibodies to I-Ek blocked the presentation of LLO 215-234. The importance of the N-terminal portion of LLO 215-234 was evidenced by the drastic reduction in antigenic activity of truncated peptides (e.g., LLO 221-234 and LLO 224-234). LLO 215-234, the strongest and most consistent activator of T cells from L. monocytogenes-immune mice, fit well some models for antigenic peptides in several ways. It could be predicted to form an amphipathic alpha-helix, it contained multiple "Rothbard motifs" (charged residue or glycine, two or three hydrophobic amino acids and then a glycine or polar residue), it had a net charge of +2, and it contained the correct spacing of amino acids (five to six residues between a hydrophobic and basic amino acid) that is characteristic of I-Ek-binding peptides. Immunization with 8 of 10 synthetic LLO peptides generated T cells that recognized the immunizing peptide in vitro, but such T cells were only poorly reactive with LLO. Our results indicate that LLO is an important target Ag for stimulation of CD4+ L. monocytogenes-specific T cells, and that LLO 215-234 is antigenically dominant in C3HeB/FeJ mice.

Animals

Induction of macrophage Ia expression in vivo by a synthetic block copolymer, L81.

Certain synthetic, nonionic, block copolymers of polyoxypropylene and polyoxyethylene are potent immunoadjuvants. While investigating their mechanisms of action, we found that one of these copolymers, L81, induced the expression of macrophage Ia in vivo. L81 is a 2750-Da, linear copolymer with a 43-unit core of hydrophobic polyoxypropylene flanked on each side by 3 U of hydrophilic polyoxyethylene. It induced threefold to sevenfold increases in the proportion of peritoneal macrophages expressing I-A from 5 to 7 days after an i.p. injection of 5 mg. As little as 1 mg caused a twofold increase. I-A density increased with time after injection of L81. Macrophages induced by L81 actively synthesized I-A, showing an 18-fold increase in biosynthetic capacity. Ia induction did not require the presence of mature T lymphocytes, because similar increases in I-A expression were seen in athymic and euthymic mice. L81-induced macrophages were 10-fold more effective than normal macrophages in presenting Ag to a T cell hybridoma. Other functional studies showed that they were primed for the secretion of superoxide ion and could be stimulated in vitro by IFN-gamma and LPS to lyse tumor target cells. These results suggest that the induction of macrophage Ia expression by L81 may play a role in its activity as an immunoadjuvant.

Adjuvants, Immunologic

Intracellular hemolysin-producing Listeria monocytogenes strains inhibit macrophage-mediated antigen processing.

We found that virulent hemolysin-producing (Hly+) Listeria monocytogenes strains inhibit antigen processing and presentation when added to macrophages in vitro. A virulent Hly- bacteria caused little or no inhibition. Live Hly+ bacteria inhibited presentation of both heat-killed L. monocytogenes and ovalbumin. Several observations indicate that hemolysin produced by intracellular bacteria was responsible for the inhibition. First, inhibition was observed even when extracellular bacteria were removed after a brief 10-min bacterial uptake period. Second, inhibition was not prevented by the addition of cholesterol, a substance which inactivates soluble hemolysin. Third, only very high concentrations of soluble hemolysin were inhibitory. Under conditions which inhibit antigen presentation (10(5) per well), macrophages retained normal levels of Ia, maintained normal morphology, and were not permeable when assayed by chromium release. The uptake and catabolism of 35S-labeled live bacteria by macrophages were similar for both Hyl+ and Hly- bacteria. Only a small decrease in uptake and catabolism of surface-iodinated heat-killed L. monocytogenes by macrophages pretreated with inhibitory numbers of live Hly+ bacteria was observed. Additionally, macrophages pretreated with live Hly+ bacteria and fixed 1.5 h later were able to effectively present an ovalbumin peptide (amino acids 323 to 339) to the T-cell hybridoma DO11.10. Hemolysin-producing bacteria inhibited the presentation of antigens that need processing better than they did of antigens that do not require a processing event. Thus, we have demonstrated inhibition of an intracellular antigen processing pathway by hemolysin-producing L. monocytogenes, which may contribute to the virulence of this pathogen.

Animals

Cloning and characterization of T-cell-reactive protein antigens from Listeria monocytogenes.

To explore the molecular basis of the T-cell-mediated immune response to Listeria monocytogenes, we cloned and expressed listerial antigens in Escherichia coli using the lambda-ZAP bacteriophage and Bluescript plasmid vectors. A two-stage screening strategy was implemented to identify T-cell-reactive antigens; the first stage involved antibodies or oligonucleotide probes and the second stage was based on assays for T-cell activation. A library of genomic DNA from L. monocytogenes was generated in lambda-ZAP, and then antigens, were detected in infected cells with a polyclonal rabbit anti-L. monocytogenes antiserum and an L. monocytogenes-specific monoclonal antibody. Also, synthetic oligonucleotide probes corresponding to the structural gene for listeriolysin O (LLO) were used to screen the recombinant DNA library. In each case, positive isolates were evaluated for T-cell antigenicity by measuring antigen-induced interleukin-2 production by polyclonal T cells taken from L. monocytogenes-immune mice. Phage clones were subcloned and expressed in the Bluescript plasmid and tested further for antigenic activity and LLO expression. Using this screening strategy, we successfully identified bacterial clones producing recombinant listerial antigens which activate L. monocytogenes-immune T cells in vitro. Antigens operative in the T-cell response during infection with L. monocytogenes include LLO, 62- and 39-kilodalton proteins, and other poorly defined bacterial surface components. We also found that high concentrations of recombinant LLO inhibited macrophage-mediated antigen presentation. These results are discussed in terms of the multiple functions of LLO as a virulence factor, inhibitor of antigen presentation, and potent antigen in the T-cell response to L. monocytogenes. These studies represent the first step toward a genetic definition of the antigens recognized in immune defense to L. monocytogenes.

Animals

Macrophages as targets for inhibition by cyclosporine.

In order to understand the mechanism of immunosuppression by cyclosporine, its effects on macrophage-mediated antigen-specific T cell activation (IL-2 production) were studied in vitro. While cyclosporine (CsA) present during the macrophage-T cell coculture inhibited antigen presentation effectively, pretreatment (2 hr) of macrophages with the drug also caused marked inhibition regardless of the antigen concentration and order of drug/antigen addition. Pretreatment of T cells caused only modest inhibition. With macrophage pretreatment, the structural analog cyclosporine-G had the same inhibitory activity as cyclosporine (cyclosporine-A), whereas dihydro-cyclosporine-D and cyclosporine-H were inactive. Cyclosporine demonstrated saturable binding to macrophages suggesting the existence of CsA-binding sites. A 50% inhibition of IL-2 production was achieved with 10(-6) M CsA and 60-70% of the binding sites were occupied at this concentration. CsA-treated macrophages did not release inhibitory material and the drug did not appear to be transferred from the macrophages to the T cells during the coculture. Although antigen-specific T cells could bind to drug-treated macrophages, they did not produce IL-2. Collectively, these results suggest that CsA has a direct effect on macrophages that subsequently interferes with IL-2 production at a stage following T cell antigen recognition.

Animals

Role of lipopolysaccharide in induction of Ia expression during infection with gram-negative bacteria.

Lipopolysaccharide (LPS), a major component of the outer membrane of gram-negative bacteria, is known to be a potent modulator of many host immune functions, including the expression of products of the class II major histocompatibility locus (Ia molecules) by macrophages. LPS-mediated Ia induction is controlled by the lps gene. We sought to determine the role of LPS in the induction of Ia expression during infection with gram-negative bacteria. To address this question, we tested a simple prediction: if LPS is the primary determinant of Ia induction during gram-negative infection, then the Ia response to intraperitoneal injection of these organisms should be under the control of the lps gene. We found that while both LPS-responder and LPS-low-responder mice showed strong Ia responses to injection of either a gram-positive bacterium (Listeria monocytogenes) or concanavalin A, only the LPS-responder mice responded strongly to gram-negative organisms or to LPS alone. We interpret these results as strong evidence for the role of LPS as the primary determinant of Ia induction by gram-negative bacteria.

Animals

Modulation of macrophage Ia expression by lipopolysaccharide: stem cell requirements, accessory lymphocyte involvement, and IA-inducing factor production.

The mechanism of induction of murine macrophage Ia expression by lipopolysaccharide (LPS) was studied. Intraperitoneal injection of 1 microgram of LPS resulted in a 3- to 10-fold increase in the number of IA-positive peritoneal macrophages (flow cytometry and immunofluorescence and a 6-to 16-fold increase by radioimmunoassay. The isolated lipid A moiety of LPS was a potent inducer of macrophage Ia expression. Ia induction required a functional myelopoietic system as indicated by the finding that the response to LPS was eliminated in irradiated (900 rads) mice and reinstated by reconstitution with bone marrow cells. Comparison of LPS-induced Ia expression in normal and LPS-primed mice revealed a faster secondary response to LPS. The memory response could be adoptively transferred to normal mice with nonadherent spleen cells prepared 60 days after LPS injection. Spleen cells prepared 5 days after LPS injection caused Ia induction in LPS-nonresponder mice; such induction was not observed in irradiated (900 rads) recipients. The cell responsible for this phenomenon was identified as a Thy-1+, immunoglobulin-negative nonadherent cell. The biosynthesis and expression of Ia were not increased by direct exposure of macrophages to LPS in vitro. Small amounts of LPS inhibited Ia induction by gamma interferon. LPS showed positive regulatory effects on Ia expression by delaying the loss of Ia expression on cultured macrophages and by stimulating the production of Ia-inducing factors. Supernatants from cultured spleen cells stimulated with LPS in vitro contained antiviral and Ia-inducing activity that was acid labile, indicating that the active factor is gamma interferon. We conclude that induction of Ia expression by LPS in vivo is a bone-marrow-dependent, radiation-sensitive process which involves the stimulation of a gamma interferon-producing accessory lymphocyte and a delay in Ia turnover.

Animals

Inhibition of macrophage-mediated antigen presentation by hemolysin-producing Listeria monocytogenes.

T lymphocytes and macrophages from Listeria-infected mice were used to evaluate the processing and presentation of live Listeria monocytogenes in vitro. Antigen presentation to T cells was quantitated by interleukin-2 production. In contrast to inert antigens such as heat-killed Listeria, live bacteria were processed and presented poorly. To evaluate the role of hemolysin (Hly), we used isogenic pairs of Hly+ and Hly- Listeria as antigens. In contrast to live Hly- bacteria, which were presented as well as heat-killed Listeria, live Hly+ bacteria were presented poorly. Hly+ bacteria also inhibited the presentation of heat-killed Listeria. This effect was apparent with as few as 10 bacteria/macrophage and was not due to loss of macrophage viability or decreased Ia expression after exposure to the live bacteria. With respect to murine listeriosis, the LD50 values for the Hly- strains were at least 1000 times higher than those for the Hly+ strains. These results suggest that the ability of Hly+ bacteria to inhibit antigen processing and presentation may be an important determining factor in Listeria infection and immunity.

Animals

Induction of macrophage Ia expression by lipopolysaccharide and Listeria monocytogenes in congenitally athymic nude mice.

Experiments were performed to analyze the mechanism by which lipopolysaccharide (LPS) modulates the expression of Ia by murine peritoneal macrophages in vivo. We investigated the effect of LPS on Ia expression in T cell deficient mice by using the congenitally athymic nude mouse model. Injection (i.p) of LPS into athymic (nu/nu) mice resulted in a dramatic increase in the expression and biosynthesis of Ia by peritoneal macrophages 7 days after injection. The magnitude and kinetics of this induction were equivalent to increases observed after LPS injection of euthymic (nu/+) mice. Viable Listeria monocytogenes also increased Ia expression in athymic mice, but in contrast to the induction observed in euthymic mice at 3 and 7 days after injection, increased Ia expression was not seen until 7 days. Ia induction by either LPS or L. monocytogenes in athymic mice was not due to the presence or development of mature T cell function as defined by assays for T cell mitogenesis and interleukin 2 production. We conclude that increased macrophage Ia expression by LPS and L. monocytogenes in vivo can occur in the absence of mature functioning T cells.

Animals

The antigenic and mitogenic response of murine T and B lymphocytes to soluble proteins of Listeria monocytogenes.

Solubilized constituents from Listeria monocytogenes were fractionated by various techniques including isopycnic gradient centrifugation, molecular sieve chromatography, and preparative SDS-polyacrylamide gel electrophoresis (SDS-PAGE). Fractionated material was tested in vitro for mitogenic and antigenic activity by quantitating the proliferation of splenic lymphocytes and the interleukin production by peritoneal T cells. Fractionation by isopycnic gradient centrifugation revealed both antigenic and mitogenic material fractionating with the protein at a density of 1.3 g/ml. This characteristic density, together with the reduction of activity with trypsin treatment, defined the material as protein. This material was termed soluble listerial proteins (SLP). Fractionation of SLP by molecular sieve chromatography using Sephacryl 200 (S-200) revealed predominant antigenic and mitogenic activity in proteins of greater than 100,000 m.w. In contrast, fractionation of SLP by preparative SDS-PAGE (nonreducing conditions) showed activity in groups of proteins with m.w. of less than 76,000. This difference (S-200 vs SDS-PAGE) may indicate an aggregation or subunit composition which is disrupted by SDS. When fractionated by SDS-PAGE, antigens which induced macrophage-dependent interleukin production by Listeria-immune T cells were observed over a broad range of molecular sizes. Major groups of antigenic proteins were observed at 57,000 to 76,000 m.w., approximately 40,000 and less than 25,000 m.w. Mitogenic activity (spleen cell proliferation) was associated with a more restricted group of proteins with major peaks at 57,000 and 40,000 m.w., with some weak activity in proteins less than 20,000 and greater than 64,000 m.w. Experiments involving T or B lymphocyte-depleted spleen cells and spleen cells from athymic mice revealed that the mitogenic response of splenic lymphocytes to SLP was predominantly B cell-mediated. Thus, we have defined groups of listerial proteins with potent antigenic activity with respect to T lymphocyte activation and as mitogenic activity for B cells.

Animals

Differential requirements for the processing and presentation of soluble and particulate bacterial antigens by macrophages.

The requirements for antigen processing and presentation by macrophages using various forms of antigens derived from Listeria monocytogenes have been studied. Antigen presentation was monitored by T cell-macrophage binding and interleukin production using T cells from Listeria monocytogenes-infected mice and specific T cell hybridomas. Antigen processing requirements were defined by three criteria: (a) inhibition by lysosomotropic agents, NH4Cl and chloroquine; (b) kinetic relationships between antigen uptake and antigen presentation; and (c) antigen presentation by macrophages pre-fixed with glutaraldehyde. In comparing heat-killed Listeria monocytogenes (HKLM) with soluble listerial proteins (SLP), the presentation of SLP was less sensitive to lysosomotropic agents, showed faster antigen processing kinetics than with HKLM and could occur using pre-fixed macrophages. Transitions between particulate and soluble forms had dramatic influences on processing requirements. Antigens associated with HKLM could be converted to soluble forms which did not require processing by preculture with macrophages and also by physical (e.g. sonication) and chemical (sodium dodecyl sulfate) treatments in the presence of protease inhibitors. Conversely, antigen processing was required when SLP were converted to a particulate form by covalent binding to latex beads. Analysis of SLP by molecular sieve chromatography and preparative SDS-polyacrylamide gel electrophoresis revealed that high molecular weight proteins (greater than 60 kDa) could be presented by prefixed macrophages without prior processing. We conclude that the transition from a particulate to soluble antigenic form can be a significant antigen processing event.

Ammonium Chloride

An early response to lipopolysaccharide is the elicitation of macrophages specialized for antigen degradation with negative regulatory effects on the induction of specific immune responses.

The ability of macrophages to catabolize antigens is relevant both as a means to process complex antigens before presentation to T cells and as a way to down-regulate immune responses by destroying the antigenicity of polypeptides. With these considerations in mind, we investigated the regulation of macrophage catabolic activity by lipopolysaccharide (LPS). Catabolic activity was quantitated by following the distribution and molecular form of 125I-labeled surface components of heat-killed Listeria monocytogenes after their uptake by macrophages. We compared the catabolic activity of macrophages from peritoneal exudates of mice injected intraperitoneally with saline or LPS and found that LPS-elicited macrophages displayed a greatly enhanced (threefold) rate of catabolism. This increase in catabolic activity peaked 3 days after LPS injection and slowly declined thereafter, approaching a base-line level after 3 weeks. The enhancement of catabolic activity was under Lps gene control. Macrophages that were elicited 3 days after intraperitoneal injection of LPS rapidly destroyed the antigenicity of bacterial antigens, expressed low levels of Ia molecules, and processed and presented antigen slowly when tested as antigen-presenting cells in vitro. We also showed that an injection of LPS before infection with L. monocytogenes resulted in diminished development of T-cell reactivity to this organism. These results suggest that LPS elicits a macrophage population specialized for antigen degradation functions, with negative regulatory effects on the induction of specific immune responses.

Animals

T-2 toxin-enhanced resistance against listeriosis in mice: importance of gastrointestinal lesions.

The role of T-2 toxin-induced gastrointestinal lesions in T-2 toxin-enhanced resistance to listeriosis in mice was evaluated. The T-2 toxin-induced lesions did not cause a starvation effect sufficient to enhance resistance to listeriosis. Administration of polymyxin E markedly reduced the gram-negative intestinal microflora and did not eliminate the toxin-induced resistance to listeriosis. The T-2 toxin did not cause an increased expression of Ia surface antigens on peritoneal macrophages. Thus, toxin-induced anorexia and starvation or absorption of gram-negative intestinal bacteria and endotoxins through toxin-induced gastrointestinal lesions did not account for the enhancing effect of T-2 toxin on resistance to Listeria monocytogenes infection in mice.

Animals

Cyclosporine inhibits macrophage-mediated antigen presentation.

The influence of cyclosporine on antigen-specific, macrophage-dependent T cell activation was analyzed in vitro. Murine T cell activation by antigens derived from Listeria monocytogenes was monitored by the production of interleukin 2. Pretreatment (2 hr, 37 degrees C) of macrophages with cyclosporine resulted in a cell population with a markedly diminished capacity to support the activation of T lymphocytes. When cyclosporine-pretreated macrophages were added to cultures of untreated T cells and antigen, the dose of cyclosporine that produced 50% inhibition (ID50) was 1.5 micrograms/ml, and if antigen was present during the drug pretreatment, the ID50 was 0.6 micrograms/ml. Pretreatment of T cells also inhibited their subsequent activation by antigen and untreated macrophages, but a higher dose of cyclosporine was required to produce similar inhibition (ID50 = 4.4 micrograms/ml). Additional experiments focused on the mechanism of inhibition of antigen presentation when macrophages were pretreated with the drug. The addition of interleukin 1 or indomethacin to the cultures did not alter the inhibitory effect of cyclosporine. Under conditions that produced greater than 90% inhibition of antigen presentation, macrophage surface Ia expression was not altered, and the uptake and catabolism of radiolabeled antigen remained normal. Thus, cyclosporine had profound effects on antigen presentation that appear to be unrelated to decreases in interleukin 1 production, increases in prostaglandin production, decreases in Ia expression, or changes in antigen uptake and catabolism.

Animals