4-Hydroxy-oxyphenbutazone (4OH-OPB), is currently in phase II trials for its immunosuppressive effect in patients with rheumatoid arthritis. 4OH-OPB and other compounds related to phenylbutazone were tested for their effect on in vitro cytokine production by monocytes and lymphocytes present in peripheral mononuclear cells (PBMC) or whole blood (WB) cultures, and compared against phenylbutazone and oxyphenbutazone, two known anti-inflammatory drugs. In PBMC cultures, 4OH-OPB was by far the most potent inhibitor, and both monokines and Th1 and Th2 lymphokines were efficiently inhibited at low concentrations. In WB cultures, 4OH-OPB was less effective than in PBMC cultures, but was still the best inhibitor of lymphokine production and, furthermore, was the only inhibitor of monokine production. The increase in 4OH-OPB concentration needed to induce the same inhibition of cytokine production in WB as in PBMC culture could be mimicked by the addition of erythrocytes to the PBMC cultures. Experiments with radioactively-labeled 4OH-OPB suggest that 4OH-OPB is taken up very rapidly into erythrocytes and is secreted by the erythrocytes with much slower kinetics via a multidrug-resistance-associated protein. The secreted compound is most likely structurally different from 4OH-OPB, as in PBMC and WB cultures, the inhibition of cytokine production seems to be caused by a different mechanism. In PBMC cultures, the inhibition of cytokine production is accompanied by a loss of cell viability, while this is not the case when 4OH-OPB inhibits cytokine production in WB. Our data suggest that 4OH-OPB may be useful as an immunosuppressive drug for patients with inflammatory diseases.
Background: Many patients with rheumatoid arthritis are currently successfully treated with infliximab (anti-tumour necrosis factor); however, about 30% of the patients do not respond to infliximab. One of the postulated hypotheses of not responding is the fast clearance of infliximab due to the development of infliximab-anti-infliximab complexes.Objective: To investigate the in vivo mechanism of not responding and the role of human anti-chimeric antibodies (HACAs) by using radiolabelled infliximab.Methods: Two responding and two non-responding patients with rheumatoid arthritis, infused with radiolabelled infliximab, were investigated by both imaging and serum analysis. Results: Images showed predominant presence of infliximab in blood up to 24 h, with a trend of faster blood clearance and of higher liver/spleen uptake in a non-responding patient. Clinically inflamed joints showed uptake of the drug. The HACA level in the non-responders was high (1641 and 1008 U/ml), but low or not detectable in responders. Sucrose gradients of serum showed antibody complexes in both non-responders. Various sizes of antibody complexes, including very large ones, were observed in a non-responder who developed a serious infusion reaction.Conclusion: Formation of infliximab-anti-infliximab complexes were found in non-responders due to the presence of large amounts of HACA. This finding, supported by both imaging and serum analysis data, may explain failure of infliximab treatment.
Objective: A bioassay is developed for the measurement of methotrexate (MTX) in serum.Methods: The assay is based on MTX inhibition of the proliferation of hypoxanthine-guanosine phosphoribosyl transferase (HGPRT) negative mouse B-cells (B9.H). HGPRT negative cells cannot use the salvage pathway of nucleotide synthesis to overcome inhibition by MTX.Results: When B9.H cells are cultured with serial dilutions of serum, inhibition of proliferation is a measure of the amount of MTX in the serum. Circulating folates do not interfere with the assay.Conclusion: This simple assay can detect low concentrations of MTX in serum: it is therefore useful for following the pharmacodynamics of functional MTX after low-dose MTX treatment.
OBJECTIVES:To analyse whether the beneficial effects of methotrexate in rheumatoid arthritis (RA) could be due to inhibition of inflammatory cytokine production. METHODS:Cytokine production was studied using whole blood (WB) and mononuclear cells (MNC) of healthy volunteers and RA patients. Cultures were stimulated with either bacterial products such as lipo-oligosaccharide (LOS) or Staphylococcus aureus Cowan I (SAC) to activate monocytes or with monoclonal antibodies to CD3 and CD28 to induce polyclonal T-cell activation. We analysed the effect of methotrexate on cytokine production in these systems. RESULTS:We showed that methotrexate inhibits production of cytokines induced by T-cell activation. Among the cytokines inhibited were interleukin 4 (IL-4), IL-13, IFN gamma, tumour necrosis factor-alpha (TNF alpha) and granulocyte-macrophage colony-stimulating factor. Inhibition was seen at concentrations easily achieved in plasma of RA patients taking the drug. IL-8 production was hardly influenced by methotrexate. Furthermore, inhibition was dependent on the stimulus; IL-6, IL-8, IL-1 beta and TNF alpha production induced by LOS or SAC was only slightly decreased by methotrexate. The addition of folinic acid or thymidine and hypoxanthine reversed the inhibitory effects of methotrexate on cytokine production. Concentrations of methotrexate required for inhibition varied between donors. Oral intake of 10 mg methotrexate by RA patients led to marked inhibition of cytokine production in blood drawn after 2 h. CONCLUSIONS:Methotrexate turns out to be an efficient inhibitor of cytokine production induced by T-cell activation in freshly drawn blood. This is due to inhibition of the de novo synthesis of purines and pyrimidines. Cytokines produced by monocytes are hardly affected by methotrexate.
Methotrexate (MTX) and mycophenolic acid (MPA) are used clinically for their immunosuppressive properties. MTX is widely used for the treatment of RA. MPA is used to prevent graft rejection and is now experimentally used in SLE and RA. The precise mechanism of action is still debated. Both drugs, though in different ways, inhibit the de novo synthesis of DNA and RNA. We have analysed cytokine production in short cell cultures in whole blood and isolated cells by ELISA. We have shown before that both drugs inhibit the production of several cytokines after T-cell stimulation, and we concluded that MTX leads to irreversible elimination of activated T cells by apoptosis, whereas MPA reversibly prevents activation of resting T cells. We now show that when monocytes are stimulated by SAC or lipopolysaccharide, both MTX and MPA decrease TNF-α, IL-6 and IL-8 production. However the inhibition is not as profound as after T-cell stimulation. An exception is the effect on the production of the proinflammatory cytokine IL-1β. The production of IL-1β is not influenced by MTX after SAC or LPS stimulation, whereas the production is increased by MPA when cells are stimulated with LPS, but not with SAC. We have investigated the cause for this increase. The expression of IL-1β mRNA is not influenced by MPA. Immunoprecipitation and ELISA show that MPA leads to a decrease in the intracellular proform of IL-1β. We conclude that MPA leads to enhanced cleavage of pro-IL-1β.
Background The mechanism by which methotrexate (MTX), a well known antifolate inhibits inflammation is still unknown. The inflammation in rheumatoid arthritis is mediated by pro-inflammatory cytokines such as TNFα and IFNγ. Objectives To assess whether cytokine production in blood of RA patients is inhibited after taking MTX. Methods Blood was obtained from 25 RA patients at T = 0 h and T = 2 h after taking MTX (10 mg or) for the first time. Heparinized Whole Blood Cultures (WBC; dilution 1/4) using anti-CD3 and anti-CD28 as stimulus were performed, with and without addition of folinic acid (40 g/ml) to the culture. Because MTX has been reported to induce IL-10 production all experiments were also carried out with and without excess neutralising mAb to IL-10. After incubation for 72 h supernatants were measured by ELISA. Results IFNγ production by WBC of 25 RA patients before (T = 0 h) and after (T = 2 h) MTX. Conclusion MTX inhibits ex vivo IFNγ production in RA patients by a folate dependent mechanism. MTX does not act via induction of IL-10. Similar results were found for TNFα and GM-CSF. IL-8 production is not affected by MTX.
IL-13 plays a crucial role in the development of allergic asthma by several mechanisms, including induction of IgE antibodies, airway eosinophilia and hyper-reactivity. We previously established a deregulated production of IL-13 by T cells from allergic asthma patients. In this report we describe the identification of a novel IL-13 promoter polymorphism (C to T exchange) at position -1055. The IL-13 -1055 TT genotype is associated with allergic asthma (P = 0.002), altered regulation of IL-13 production (P < 0.002), and increased binding of nuclear proteins to this region. We postulate that the presence of this polymorphism predisposes to the development of allergic asthma.
IL-12 is essential for T helper 1 (Th1) development and inhibits the induction of Th2 responses. Atopic diseases, which are characterized by Th2 responses, are associated with the overproduction of histamine. Here we present evidence that histamine, at physiological concentrations, strongly inhibits human IL-12 p40 and p70 mRNA and protein production by human monocytes. The use of specific histamine receptor antagonists reveals that this inhibition is mediated via the H2 receptor and induction of intracellular cAMP. The inhibition of IL-12 production is independent of IL-10 and IFN-gamma. The observation that histamine strongly reduces the production of the Th1-inducing cytokine IL-12 implies a positive feedback mechanism for the development of Th2 responses in atopic patients.
IVIG preparations have biological effects in vivo that are not fully understood. Possible effects include the property to stimulate Fc receptors on various cell types. To study whether IVIG may interact with neutrophils we developed an in vitro system, in which neutrophils, in whole blood or purified, were incubated with IVIG and assessed for degranulation by measuring the release of elastase and lactoferrin in culture medium. All commercially available IVIG preparations tested induced degranulation of neutrophils when incubated for 2 h at therapeutically relevant concentrations. In studies with blocking antibodies against Fc receptors (FcR), this degranulation was shown to be dependent on Fc gammaRII, whereas Fc gammaRIII had no effect. Experiments with purified neutrophils as well as binding experiments with labelled IVIG preparations indicated that neutrophil degranulation resulted from a direct interaction of IVIG with neutrophils. Using gel filtration fractions, it was found that polymeric and dimeric IgG present in IVIG was mainly responsible for the degranulation. We suggest that degranulation of neutrophils may contribute to the (side)effects of IVIG treatment in vivo.
IgE antibodies play a crucial role in allergic type I reactions. Only IL-4 and IL-13 are able to induce an immunoglobulin isotype switch to IgE in B cells. A major question is to what extent these cytokines contribute to the production of IgE in allergic patients. To address this question we used an in vitro culture system in which the production of IgE is dependent on endogenously produced IL-4 and IL-13. In cultures of purified T and B cells from allergic asthma patients and non-atopic controls, T cells were polyclonally stimulated to obtain IL-4, IL-13 and subsequently IgE secretion. The absolute amount of IgE produced was not significantly different between patients and controls. When neutralizing IL-4 antibodies were included during culture, the production of IgE was dramatically inhibited in both patients and controls (production of IgE was reduced to 12%). However, neutralization of IL-13 led to a significantly stronger inhibition of IgE production in the patient group: production of IgE was reduced to 23 +/- 3% versus 50 +/- 10% in the control group. Corresponding with these results, we also observed a higher production of IL-13 by the patients, while the production of IL-4 was not significantly different. A more detailed analysis of the production of IL-13 revealed that patients' T cells were less sensitive to a negative signal controlling IL-13 production. Our results indicate that, at least in vitro, IgE production in allergic asthma patients is more dependent on IL-13 than in non-atopics, due to enhanced IL-13 production and to enhanced IgE production in response to IL-13.