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J Pryjma

Publications and source records attributed to J Pryjma.

At least 37 records · Page 2Linked to original sources

Modulation of monocyte antigen-presenting capacity by tumour necrosis factor-alpha (TNF): opposing effects of exogenous TNF before and after an antigen pulse and the role of TNF gene activation in monocytes.

We have previously shown that exogenous human recombinant tumour necrosis factor-alpha (rTNF), added before an antigen pulse, enhanced antigen presentation by human blood monocytes. The present study shows that, surprisingly, rTNF added after an antigen (PPD) pulse inhibited, while anti-TNF monoclonal antibody (mAb) enhanced, antigen presentation. mAbs htr-9 against p55 TNF receptor type I (TNF-RI) abrogated rTNF enhancing effect on PPD presentation and decreased presenting activity of untreated monocytes while utr-1 mAb, against p75 TNF receptor type II (TNF-RII), reversed the inhibitory effect of rTNF given after antigen pulse. PPD and rTNF when added singly induced TNF-mRNA accumulation in monocytes. Pretreatment of monocytes with rTNF followed by a PPD pulse caused an enhancement of TNF-mRNA accumulation. However, when post-treatment with rTNF was applied to PPD-pulsed monocytes, then inhibition of TNF gene expression was seen. This may point to the role of endogenously generated TNF in regulation of antigen-presenting capacity of monocytes. These studies indicate that TNF is an important regulator of monocyte antigen-presenting capacity and that the level of TNF gene activation in monocytes may be associated with their ability to present nominal antigen.

Antibodies, Monoclonal↗

Elimination of monocytes from cultures activated with recall antigens.

Recent data provide evidence that antigen-specific CD4+ T-cell clones or antigen-activated T-cell lines can kill antigen-presenting cells (APC). We focused our studies on monocytes acting as APC in cultures of T cells freshly isolated from peripheral blood. The presence of monocytes in culture was monitored by their ability to emit light during phagocytosis of latex particles (latex-induced chemiluminescence). Using this approach as well as flow cytometry, evidence is presented that monocytes are eliminated from cultures with T cells activated with recall antigens (PPD or TT). The mechanism of monocyte elimination involved apoptosis as judged from in situ detection of DNA strand breaks by the terminal deoxynucleotidyl transferase assay. The antigen- but not lectin-dependent monocyte elimination was MHC-restricted and mediated by CD4+ T lymphocytes. This finding supports the hypothesis that elimination of APC is a general phenomenon during T-cell activation and may represent an important immunoregulatory mechanism.

Antigen-Presenting Cells↗

Monocyte-mediated regulation of antigen-driven IFN gamma production by T cells. The role of endogenously produced TNF.

The question was asked whether tumour necrosis factor alpha (TNF) is involved in regulation of interferon gamma (IFN gamma) production by T cells. Monocytes were exposed to exogenous TNF or to TNF synthesis inhibitors (pentoxifylline, PTX and adriamycin, ADR) and then used as antigen (PPD) presenting cells for autologous T cells. The ability of T lymphocytes to release IFN gamma was assessed after 3 days of culture. Preincubation of monocytes with rTNF enhanced their ability to induce IFN gamma production while TNF synthesis inhibitors decreased it. Anti-TNF and anti-TNF-R2 monoclonal antibodies (mAbs) inhibited monocyte ability to present PPD for IFN gamma production which suggested that endogenously produced TNF by monocytes had to be released and acted on TNF-R2 on the monocyte surface. The enhancing effect of exogenous TNF was also abrogated by anti-TNF-R2 mAb. Pretreatment of monocytes with rTNF enhanced, while pretreatment with PTX decreased, PPD-induced IL-6 production. An increased production of IL-4 was found in cultures of PTX-treated, PPD-pulsed monocytes with T cells. This may indicate that in the relative absence of monocyte costimulatory signal(s), probably IL-6, Th2 cells are stimulated. These results indicate that TNF is involved in control of monocyte-mediated regulation of cytokine production by T cells.

Antibodies, Monoclonal↗

Preactivation and phenotype of monocytes have no influence on their elimination from culture by activated T lymphocytes.

T lymphocytes can kill antigen-presenting cells (APC) in the presence of antigen or lectin. The subject of this study was to investigate whether the state of activation or phenotype of monocytes, influence their susceptibility to killing by T cells activated with pokeweed mitogen (PWM) or anti-CD3 monoclonal antibody. The data are presented which show that monocytes activation with cytokines (IFN-gamma, IL-4, or IL-2), PPD, phorbol ester or phagocytic stimulus, have no influence on monocyte susceptibility to killing by T lymphocytes. Furthermore, flow cytometry data suggest that monocytes eliminated from culture have no characteristic phenotype. In conclusion, our data indicate that elimination of monocytes by activated T lymphocytes does not depend on the state of activation of monocytes.

Cell Death↗

Cytokines in mycobacterial infections: in vitro and ex vivo studies.

Different species of mycobacteria differ in their capacity to induce the production of tumor necrosis factor-alpha (TNF-alpha) by human monocytes in vitro. Whereas M. tuberculosis is a potent inducer of TNF-alpha, M. leprae is much less potent. TNF-alpha production is found to be associated with the availability of H2O2 generated by activated monocytes, as superoxide enhancing H2O2 concentration increases and catalase degrading H2O2 decreases TNF-alpha production. Furthermore, M. kansasii with high intrinsic catalase induce less TNF-alpha than mycobacteria with low intrinsic catalase. In vitro infection of monocytes with M. tuberculosis leads to an impairment of the antigen-presenting capacity, as determined by a reduction of antigen-induced T cell proliferation and interferon gamma (IFN-gamma) production. Of crucial importance is this impairment is the M. tuberculosis-induced down-modulation of MHC class II antigens. The role of TNF-alpha in vivo is reflected in patients with various forms of leprosy. In skin lesions of lepromatous leprosy patients TNF-alpha, interleukin 1 beta (IL-1 beta), and INF-gamma production are found to be rare, whereas these cytokines are well expressed in skin lesions of patients with tuberculoid leprosy. After multidrug chemotherapy an increase of local cytokine production is found. Taken together, these findings suggest that components of mycobacteria may interfere with local cell-mediated immune reactions in vivo. The molecular mechanisms involved in these local responses need to be defined.

Antigen-Presenting Cells↗

Human monocytes are stimulated for nitric oxide release in vitro by some tumor cells but not by cytokines and lipopolysaccharide.

Nitric oxide (NO) has been recently identified as a potent mediator of tumoricidal activity of activated macrophages. Macrophages can be activated for tumor cell killing by microbial products, including lipopolysaccharide (LPS) and various cytokines. Here we report that in contrast to mouse macrophages, human peripheral blood monocytes stimulated with cytokines or LPS failed to release NO. Also priming of monocytes with interferon-gamma followed by activation with cytokines or LPS did not cause NO secretion. However, monocytes responded with NO production to stimulation with some human cancer cells but not with untransformed cells. NO production by monocytes was inhibited by NG-monomethyl-L-arginine, specific inhibitor of NO synthase and emetine, an irreversible blocker of protein synthesis. This may imply that human monocytes are unique in their restricted capacity to produce NO following interaction with some tumor cells, but not with other stimulators, and in this respect they may be able to distinguish between malignant and normal cells.

Animals↗

Altered antigen-presenting capacity of human monocytes after phagocytosis of bacteria.

The antigen-presenting and accessory functions of monocytes were studied after phagocytosis of bacteria. Peripheral blood monocytes isolated from mononuclear cells by counterflow elutriation were incubated with suspensions of opsonized bacteria (Staphylococcus aureus, Escherichia coli, Pseudomonas aeruginosa, or Salmonella enteritidis) under conditions in which at least 80% of the monocytes engulfed microorganisms. Either the cells were pulsed with antigen (purified derivative of tuberculin or tetanus toxoid) and used as antigen-presenting cells for autologous T lymphocytes or the accessory function of the cells was examined in pokeweed mitogen-activated cultures of T cells. It has been found that phagocytosis of bacteria by monocytes reduces their ability to trigger antigen- and mitogen-induced proliferation. The reduced proliferative response of T lymphocytes was not due to a change of the kinetics of the response or triggering of suppressor mechanisms. Furthermore, antigen processing was not affected much after phagocytosis of bacteria since antigen-pulsed and paraformaldehyde-fixed cells containing bacteria were comparable to control cells in their antigen-presenting capacity. This phenomenon was observed after phagocytosis of both living and dead bacteria and was not correlated to the viability of monocytes, which were more affected after phagocytosis of living bacteria than of dead ones. As a result of phagocytosis of bacteria, reduced expression of CD54, CD14, and HLA-DQ, variable reduction of HLA-DP, CD58, and CD64, and reduced viability of monocytes were observed. In conclusion, phagocytosis of bacteria by monocytes affects their antigen-presenting and accessory functions presumably because of changes in the expression of molecules essential for monocyte-T-cell interactions and reduction of their viability.

Antigen Presentation↗

Defective antigen presentation by Mycobacterium tuberculosis-infected monocytes.

In this study we investigated the effect of an in vitro infection with Mycobacterium tuberculosis on the ability of human monocytes to present the soluble antigen tetanus toxoid to T cells. We observed that tetanus toxoid-specific T-cell proliferation was markedly reduced when monocytes were infected with large numbers (bacterium-to-monocyte ratio, 50:1) of both viable and heat-killed mycobacteria. The level of antigen-induced gamma interferon release also was decreased when M. tuberculosis-containing monocytes were used as antigen-presenting cells. However, mycobacterium-infected monocytes did not show or trigger suppressive activity, because the presence of mycobacterium-infected monocytes did not affect the T-cell response induced by tetanus toxoid-pulsed control monocytes. When M. tuberculosis-infected monocytes were fixed with paraformaldehyde, they were not able to serve as antigen-presenting cells even in the presence of untreated accessory monocytes. Moreover, the uptake of both viable and heat-killed M. tuberculosis cells reduced the expression of human leukocyte antigen DR on monocytes. With regard to accessory function, monocytes infected with large numbers of mycobacteria were less efficient as accessory cells than were control monocytes in cultures of T cells activated with pokeweed mitogen. These results indicate that infection with large numbers of M. tuberculosis cells impairs the ability of monocytes to process and/or present soluble antigen and to serve as accessory cells in T-cell activation.

Antigen Presentation↗

Modulation of antigen-presenting capacity of human monocytes by HIV-1 GP120 molecule fragments.

The two fragments of HIV-1 gp120 molecule were synthesized to study their interaction with human monocytes. Previous observations indicated that recombinant gp120 fragment (aa residues 410-511) encompassing CD4 binding region (rp120cd) induced tumour necrosis factor alpha (TNF) production in monocytes, while a similar fragment (rp120) not containing the CD4 binding sequence (aa 446-511) was inactive. This paper shows that rp120cd depressed monocyte ability to present antigen (PPD) to autologous T lymphocytes while rp120 was noninhibitory. The rp120cd interacted with monocytes but not T lymphocytes. Anti-TNF receptor type A antibody (utr-1) prevented the depression of antigen presentation caused by rp120cd, which suggested a role for TNF and its receptor. The depression of antigen presentation was seen only when monocytes were treated with rp120cd before, but not after, pulse with antigen. Parallel changes were observed in PPD-induced IL-6 production. Thus, induction of TNF by gp120 may be associated with impairment of antigen-presenting capacity of monocytes seen in AIDS patients.

Antigen Presentation↗

The reduced expression of HLA-class II antigens and adhesion molecules on monocyte surface after phagocytosis of bacteria.

The reduced expression of HLA-class II antigens (DQ and DP) and some intercellular adhesion molecules (CD11b, CD54 and CD58) was found on monocytes after phagocytosis of bacteria (S. aureus, E. coli, P. aeruginosa, S. enteritidis) but not of latex particles. In contrast, the expression of HLA-DR, CD11a and CD18 was not changed in the course of phagocytosis. The observed changes were related to the amount of phagocytosed bacteria but not to their viability or phagocytosis induced physical changes expressed as the reduction of FSC signal during flow cytometry analysis.

Animals↗

Distinct populations of antigen-presenting macrophages are required for induction of effector and regulatory cells in contact sensitivity response in mice.

Macrophages (Mf) and other antigen-presenting cells (APCs) are able to induce both immune and regulatory T cells. We compared the antigen-presenting activities of different subpopulations of thioglycolate-induced peritoneal macrophages from mice that were or were not treated with cyclophosphamide (CY) by several functional (adherence and phagocytosis) and morphologic (phenotypic) markers (FcR, Ia). Different subpopulations of macrophages were derivatized with trinitrophenyl and injected intravenously into recipients, which were tested directly for a contact sensitivity (CS) reaction or for the presence of efferent suppressor T (Ts) cells in passive transfer experiments. Our results demonstrate that peritoneal macrophages are both morphologically and functionally heterogeneous. Macrophages that induce immune cells that mediate CS have characteristics different from those that induce Ts cells. They accumulate in the low-density cell fraction on a discontinuous Ficoll gradient, are insensitive to treatment in vivo with low doses of CY, phagocytose poorly and adhere to plastic, and perhaps have low expression of FcRI and FcRII. Both macrophage fractions seem not to differ in expression of Ia, Mac-1, and Mac-3 antigens. It is argued that low doses of CY abrogate suppression in vivo by selective action on Ts cells. Our results confirm that at least a portion of the action of CY may be due to its influence on certain subpopulations of APCs.

Animals↗

Tumour-cell-induced production of tumour necrosis factor by monocytes of gastric cancer patients receiving BCG immunotherapy.

Human peripheral blood monocytes cocultured with tumour cells were used as an in vitro model of in situ interactions between tumour-infiltrating macrophages and the tumour. Tumour cells stimulated de novo expression of the human tumour necrosis factor alpha (TNF) gene in monocytes and caused the release of TNF into the culture supernatant. A group of 14 patients with stage IVA gastric cancer receiving adjuvant chemotherapy (5-FU, Adriamycin, mitomycin C: FAM) or immunochemotherapy (BCG+FAM) was investigated for the ability of monocytes to produce TNF in vitro upon stimulation with tumour cells or purified protein derivative of tuberculin (PPD). Patients were followed at biweekly intervals, i.e. before each instillation of BCG epicutaneously over a period of 10 weeks. It was found that monocytes of some patients receiving BCG at the end of the observation period had an enhanced ability to produce TNF following stimulation with tumour cells. In contrast, such production was not substantially altered during the study period in patients on chemotherapy. PPD-induced TNF production was much weaker and was not significantly changed during this observation time. We infer that BCG immunotherapy may induce the subtle changes in some cancer patients that lead to an increased interaction between monocytes and tumour cells and result in enhanced production of cytokine(s) with antitumour properties.

BCG Vaccine↗

[Chemiluminescence of granulocytes in response to Pseudomonas strains isolated from various materials].

The study was aimed at comparison of chemiluminescence of granulocytes during their incubation with suspensions of Pseudomonas strains isolated from various sources. The study was performed on 136 strains isolated from clinical material. The results were correlated with resistance of these bacteria to bactericidal activity of serum and their ability to produce proteolytic enzymes. It was found that strains isolated from blood and pus weakly activate granulocytes in contrary to bacteria isolated from urine and feces. Ability to pronounced activation of granulocytes was without relation to susceptibility of a given strain to action of serum. But it correlated negatively with ability to production of proteolytic enzymes. These observations indicate existence of relation between characteristics of strain and type of clinical material from which it was isolated.

Granulocytes↗

Immunoregulation of lymphoproliferation in vitro by monocytes and their subpopulations. II. Phenotypic changes of T cells in cultures activated with antigen and mitogen.

The aim of this study was to analyze phenotypes of T cells activated by mitogen (PWM) and antigen (PPD) in the presence of FcR+ or FcR- monocytes. It was found that CD4+ and CD8+ lymphocytes are preferentially activated in the presence of different monocyte subpopulations. Expression of HLA-DR and CD25 on CD4+ lymphocytes was greater in cultures activated in the presence of FcR-. CD8+ lymphocytes were more efficiently activated (expression of HLA-DR) when FcR+ monocytes were added to culture. In the presence of FcR+ monocytes an increased expression of CD45RA antigen on CD4+ cells was also observed. These data support our previous functional studies which showed that "suppressor" T cells of CD8+ phenotype are activated in the presence of FcR+ monocytes.

CD4 Antigens↗

FcR+ and FcR- monocytes differentially secrete monokines during pokeweed mitogen-induced T-cell-monocyte interactions.

Monocyte subpopulations which differ in the expression of Fc receptor for human IgG (FcRI) differentially regulate the T-cell-dependent, pokeweed mitogen (PWM)-induced, polyclonal B-cell response. We, thus, studied the cytokine production in human peripheral blood monocyte and T-lymphocyte cultures activated with this lectin. Monocytes or their FcR+ and FcR- subpopulations stimulated with PWM were cultured with or without T lymphocytes or their CD4+ and CD8+ subsets. Both monocyte subpopulations cultured alone produced similar amounts of tumour necrosis factor-alpha (TNF-alpha) and interleukin-6 (IL-6), but FcR- monocytes showed significantly enhanced ability to secrete interleukin-1 (IL-1). T cells, especially CD4+, added to monocyte cultures enhanced IL-1 production. This enhancement was presumably due to interferon-gamma (IFN-gamma) release by T lymphocytes, since this lymphokine enhanced IL-1 secretion when added to PWM-stimulated cultures of monocytes. Addition of monocytes, in particular the FcR+ subpopulation, greatly enhanced production of IFN-gamma by T lymphocytes. Although both T-cell subsets produced IFN-gamma, the CD4+ cells were more efficient. These results indicate that in PWM-stimulated cultures subpopulations of monocytes differ in secretion of cytokines, which might explain their differential effect on T-cell-dependent immune responses in vitro.

Antigens, Differentiation↗

The role of tumor necrosis factor in the regulation of antigen presentation by human monocytes.

Human peripheral blood monocytes pretreated with human recombinant tumour necrosis factor alpha (rTNF) showed an enhanced ability to present a soluble antigen, a purified protein derivate of tuberculin, to autologous T lymphocytes as assessed by their increased proliferation in vitro. This enhancing activity was due to TNF and not impurities in TNF preparations as anti-TNF antibodies abolished this phenomenon. The rTNF-treated monocytes showed an increased expression of HLA-DR molecules and enhanced co-stimulatory activity in the murine thymocyte assay. Pretreatment of monocytes before an antigen pulse with anti-TNF mAb inhibited antigen presentation, which indicated that endogenously produced TNF was involved. These studies thus suggest that TNF acts in an autocrine fashion and enhances the ability of monocytes to present protein antigen. It is unclear at present whether this effect is due to the modification in antigen processing, expression of MHC class II molecules, or other factors (IL-1, IL-6, adhesion molecules, etc.) that are important for the induction of T cell response to a nominal antigen. The enhancement of the antigen presenting capacity of monocytes/macrophages may be the additional mechanism of pro-inflammatory activity of TNF.

Antibodies, Monoclonal↗

Inhibitory and stimulatory effects of Pseudomonas aeruginosa pyocyanine on human T and B lymphocytes and human monocytes.

Pyocyanine, a pigment produced by Pseudomonas aeruginosa, has dual dose-dependent stimulatory as well as inhibitory effects on immune responses in vitro as measured by DNA synthesis of human T and B lymphocytes, interleukin-2 (IL-2) production by human T lymphocytes, immunoglobulin production by human B lymphocytes, and monokine production by human monocytes. In general, stimulatory activity was found at low concentrations of pyocyanine, whereas high concentrations of the pigment resulted in an inhibition of responses. At a pyocyanine concentration of 0.1 micrograms/ml or less the proliferation of T and B lymphocytes was enhanced, but at 0.5 micrograms/ml it was suppressed. IL-2 production by T lymphocytes was enhanced at concentrations up to 0.5 micrograms/ml but totally inhibited at 1.0 micrograms/ml. The differentiation of B lymphocytes to become immunoglobulin-producing cells was also enhanced in the presence of low doses of pyocyanine, whereas secretion of immunoglobulin by B lymphocytes was suppressed at all concentrations of pyocyanine. In contrast to the dual effects of pyocyanine on lymphocyte response, lipopolysaccharide-induced IL-1 and tumor necrosis factor release by monocytes was markedly enhanced by low as well as high concentrations of pyocyanine. From these results we conclude that this property of pyocyanine may lead to suppression of specific defense mechanisms and enhance harmful inflammatory reactions of the host during infection with Pseudomonas aeruginosa.

B-Lymphocytes↗

Monocyte-T-cell interactions in pokeweed mitogen-activated cultures.

Monocyte-T-cell interactions were studied in pokeweed mitogen (PWM)-activated cell cultures. We addressed the question of monocyte changes in PWM-stimulated cultures of T cells and monocytes and found, by flow cytometric analysis, that PWM activation led to a loss of cells with monocyte or macrophage phenotype (CD14, HLA-DR, HLA-DQ) within 48 hr of culture in the presence of T cells (CD4+ T cells), but not in cultures of pure monocytes. Chemiluminescence measurements revealed that phagocytic stimulation of monocytic superoxide release was impaired in PWM-stimulated cultures of monocytes plus T cells, but not in PWM-stimulated cultures of pure monocytes. Furthermore, PWM induced the secretion of interferon-gamma (IFN-gamma) in primary cultures of T cells supplemented with 20% of monocytes, whereas in subsequent secondary cultures of these cells PWM induced IFN-gamma only when monocytes were added. We conclude from these flow cytometric and functional analyses that monocytes are efficiently eliminated from PWM-activated T-cell/monocyte cultures by CD4+ T lymphocytes.

Antigens, Differentiation, Myelomonocytic↗