Search PubMed⌕ Search

Biomedical subjects

H Yssel

Publications and source records attributed to H Yssel.

At least 55 records · Page 3Linked to original sources

Defective antigen processing associated with familial disseminated mycobacteriosis.

To gain insights into a possible immune defect predisposing to disseminated mycobacteria infection, we studied three of six surviving children with disseminated Mycobacterium avium complex infection, who had no recognized form of immunodeficiency. We used mycobacteria isolated from the patients and diphtheria, tetanus and pertussis vaccine (DTP) to study antigen-specific T lymphocyte responses. We observed that interferon-gamma (IFN-gamma) production by T cells in response to antigens (both mycobacteria and DTP) in these patients with disseminated infection was greatly impaired. This defect did not seem to be the result of T cell unresponsiveness, as phytohaemagglutinin (PHA) stimulation was able to induce high levels of IFN-gamma comparable to those seen in control patients with localized infection. Further experiments showed that peripheral blood mononuclear cells (PBMC) from patients with disseminated infection were able to present influenza haemagglutinin (HA) peptides to specific T cell clones. However, this ability was lost when the whole HA protein was used as source of antigen. Taken together, these observations support the notion that the primary immune defect in these patients with disseminated mycobacterial infection rests in the antigen-processing functions of their antigen-presenting cells (APC). These findings may provide clues to the wider problem of susceptibility to mycobacteria and other intracellular pathogens and have implications in designing therapy for these patients.

Antigen Presentation↗

Reversal of the inhibitory effects of HIV-gp120 on CD4+ T cells by stimulation through the CD28 pathway.

The effects of exposure to HIV-gp120 on proliferation and cytokine production by T cell lines were investigated. T cell lines were generated by stimulation of peripheral blood mononuclear cells from several healthy donors with cross-linked anti-CD3 antibodies and IL-2. These T cell lines exhibited the characteristics of Th1 cells, producing IL-2 and interferon-gamma (IFN-gamma), but not IL-4, on stimulation with anti-CD3 antibodies. In the presence of gp120, stimulation with anti-CD3 antibodies was inhibited in terms of both proliferative responses and the secretion of IL-2 and IFN-gamma. Similar effects were observed when a T cell line was stimulated in the presence of a synthetic peptide representing the CD4-binding region of gp120. Neither gp120 nor the CD4-binding region peptide had any effect on IL-4 production by the T cell lines. Stimulation through the CD28 pathway partially restored both the proliferative effect and cytokine production by T cell lines in response to anti-CD3 antibodies in the presence of gp120. Anti-CD28 antibodies also partially restored cytokine production when purified CD4+ T cells from a T cell line were stimulated with anti-CD3 antibodies in the presence of gp120. Anti-gp120 antibodies partially or completely reversed the inhibitory effects of gp120 on T cell proliferation. These results indicate that stimulation through the CD28 pathway may restore defective CD4+ T cell responses in HIV-infected individuals.

Abatacept↗

Contribution of HLA class I and class II alleles to the regulation of antibody production to hepatitis B surface antigen in humans.

The HLA multigene family consists of HLA class I (HLA-A, B and C) and class II (HLA-DR, DQ and DP) genes, and plays a central role in the regulation of immune response. To investigate how each HLA gene and each HLA allele contribute to the human immune response, we immunized 339 healthy Japanese medical students with recombinant hepatitis B surface antigen (rHBsAg) and determined the HLA types of all vaccinated subjects at the DNA level. The anti-HBs antibody titers showed a log-normal distribution, implying that the immune response to HBsAg in humans is a multifactorial and continuous trait. A stepwise multiple regression analysis demonstrated the alleles at the HLA-class I (HLA-A and B) and class II (HLA-DRB1, DQA1, DQB1, DPA1 and DPB1) loci significantly contributed to antibody production to HBsAg. The predicting equation of anti-HBs antibody levels for individuals with any HLA phenotype was proposed based on a multiple regression analysis. The multiple correlation coefficient of antibody production to HBsAg with the HLA-DRB1 locus was highest (0.34) among all of the HLA loci, whereas those with whole HLA class I or class II loci were 0.36 or 0.44 respectively. The incorporated correlation coefficient of the presence of all HLA gene families with antibody production became 0.50, suggesting that HLA class I and class II loci within the HLA multigene family are dynamically involved in regulation of the immune response to HBsAg.

Alleles↗

Regulation of cytokine and chemokine transcription in a human TH2 type T-cell clone during the induction phase of anergy.

BACKGROUND: Selected cytokines produced by allergen specific CD4+ T cells from atopic individuals contribute to both the specific and non-specific effector mechanisms of the allergic immune response. The chemokine family of cytokines and tumour necrosis factor (TNF)-alpha are leucocyte regulatory and proinflammatory molecules. The chemokines include interleukin (IL)-8 and the RANTES/SIS cytokines. OBJECTIVE: There has been no systematic survey of chemokine production in T-cell subtypes. Because of their wide range of biological properties, it might be expected that they would be closely regulated by T cells. This paper illustrates one way (through the characterization of T-cell clones) these questions might be addressed. METHODS: Northern blot analysis was used to quantitate steady state transcription of selected cytokine genes and enzyme linked immunosorbent assay (ELISA) was used to quantitate soluble product. RESULTS: mRNA expression of the chemokines (IL-8, HuMIP-1 alpha and HuMIP-1 beta) and TNF alpha is upregulated in TH2-like cloned house dust mite reactive human CD4+ T cells under conditions of activation and during the induction phase of anergy. Although the development of anergy superinduces mRNA for both IL-8 and TNF alpha, protein production is low compared with that released during activation. In contrast, RANTES, a chemoattractant for CD4+/CD45RO+ memory T cells, eosinophils and basophils, is constitutively expressed at the RNA level by the T cells and not modulated by signals of activation and anergy induction. The production of IL-2, IL-4 and IL-5 mRNA and proteins during the induction of anergy peaks at 2 h after stimulation, whereas the kinetics following activation of the T cells is delayed in comparison. CONCLUSION: These data show that the induction of the anergic state coincides with post-transcriptional regulation of selected cytokine genes. Further study of these phenomena will impact on our understanding of the mechanisms of induction of anergy and the regulation of allergic immune responses in desensitization.

Animals↗

Modulation of the human IgE response.

Studies on the immunological basis of allergic diseases have indicated that enhanced production of the cytokines interleukin (IL)-4 and IL-13 and the reduced production of interferon-gamma (IFN-gamma) by allergen-specific T-cells contribute to enhanced immunoglobulin E (IgE) synthesis and the development of allergic disease in certain individuals. Therefore, inhibition of IL-4 and IL-13 synthesis or blocking of activities of these cytokines would be one approach to inhibiting IgE production. In the present communication, novel approaches toward this goal are discussed. It is shown that an IL-4 mutant protein, in which the tyrosine residue at position 124 is replaced by aspartic acid (IL-4,Y124D), binds with high affinity to the IL-4 receptor, without receptor activation. IL-4,Y124D acts as a potent antagonist both of IL-4 and IL-13 activity in vitro, and inhibits immunoglobulin G4 (IgG4) and IgE production induced by these cytokines. These data are compatible with the notion that the IL-4 and IL-13 receptors are complex receptors, which share a common component, which is required for signal transduction. In addition, it has been demonstrated that allergen-specific T-cells, belonging to the T-helper 2 (Th2) subset can be rendered anergic after incubation with allergen-derived peptides representing minimal T-cell activation inducing epitopes. These anergic Th2 cells failed to produce IL-4 and IL-13, and failed to proliferate after activation with allergen and antigen-presenting cells (APC). The anergized T cells also failed to give B-cells help in IgE synthesis, although they expressed normal levels of the CD40 ligand (CD40L). Exogenous IL-4 and IL-13 failed to restore IgE synthesis, indicating that in addition to CD40L other co-stimulatory signals are required for productive T-cell/B-cell interactions, resulting in IgE synthesis. IgE production was restored by exogenous IL-2, demonstrating that IL-2 reverses the nonresponsive state and helper function of these nonresponsive T-cells. It is tempting to speculate that induction of T-cell nonresponsiveness by allergen-derived peptides may represent the underlying mechanisms for successful immunotherapy in allergenic patients.

Animals↗

Peptide-induced anergy in allergen-specific human Th2 cells results in lack of cytokine production and B cell help for IgE synthesis. Reversal by IL-2, not by IL-4 or IL-13.

The induction of anergy in T cells is believed to be the result of triggering of the TCR in the absence of adequate costimulation mediated through the interaction of CD28 and its ligands, CD80 and CD86. Here, we demonstrate that stimulation of human group I allergen in Dermatophagoides pteronyssinus extract (Der p 1)-specific CD4+ Th2-like T cell clones with Der p 1-derived peptides in the absence of professional APC results in a state of nonresponsiveness. The induction of anergy occurred despite the expression of high levels of CD28, CD80, and CD86 on the surface of the T cell clones and was not prevented by the addition of anti-CD28 mAb. The anergic, Der p 1-specific, Th2 cells failed to mobilize calcium from intracellular stores, to proliferate, and to produce IL-2, IL-4, IL-13, GM-CSF, and TNF-alpha following optimal stimulation with Der p 1-derived peptide and autologous APC. However, they mobilized intracellular calcium following stimulation with Ca(2+)-ionophore and produced all of the above cytokines, including IFN-gamma, when stimulated with phorbol ester and Ca2+ ionophore. These results indicate that the anergic T cell clones are capable of responding to signals circumventing the TCR/CD3 complex activation pathway. In contrast to T cell clones optimally activated with peptide and APC, anergic T cells failed to induce IgG4 and IgE synthesis when cocultured with B cells, even in the presence of exogenous IL-4 or IL-13. Anergic T cells expressed normal levels of CD40L, suggesting that their inability to help in Ig production by B cells is due to conditions other than a lack of expression of this molecule. Finally, exogenous IL-2 restored the helper function of anergic Th2 T cells for IgE production by B cells, which was greatly enhanced by the addition of IL-4 or IL-13. These data suggest that induction of anergy in allergen-specific Th2 T cells by allergen-derived peptides may play an important role in the successful desensitization of allergic patients.

Allergens↗

A novel receptor involved in T-cell activation.

Optimal T-cell activation and T-cell expansion require triggering by T-cell antigen receptors and co-stimulatory signals provided by accessory cells. A major co-stimulatory pathway involves crosslinking the CD28 molecule on T cells by its ligands CD80 or CD86 expressed on antigen-presenting cells. But recent studies on CD28-deficient mice have indicated that CD28 is not required for all T-cell responses and that additional T-cell co-stimulatory pathways exist. Here we describe a novel glycoprotein, of relative molecular mass 70,000 (M(r) 70K), designated SLAM, that belongs to the immunoglobulin gene superfamily, which is involved in T-cell stimulation. SLAM is constitutively expressed on peripheral-blood CD45ROhigh memory T cells, T-cell clones, immature thymocytes, and a proportion of B cells, and is rapidly induced on naive T cells after activation. Engagement of SLAM enhances antigen-specific proliferation and cytokine production by T cells carrying the CD4 antigen (CD4+). Particularly, the production of interferon-gamma (IFN-gamma) is strongly upregulated, even in T helper type 2 (Th2) CD4+ T-cell clones, whereas no induction of interleukin (IL)-4 or IL-5 production was observed in Th1 clones. In addition, the engagement of SLAM induces directly the proliferation of CD4+ T-cell clones and preactivated T cells, in the absence of any other stimuli, and without CD28 involvement. Thus SLAM is a novel receptor on T cells that, when engaged, potentiates T-cell expansion in a CD28-independent manner and induces a Th0/Th1 cytokine production profile.

Amino Acid Sequence↗

Molecular cloning and functional characterization of human lymphotactin.

We describe the isolation of a cDNA that encodes human lymphotactin (Ltn), a new class of lymphocyte-specific chemokine. Human Ltn shows similarity to some members of the C-C chemokine family but has lost the first and third cysteine residues that are characteristic of the C-C and C-X-C chemokines. Ltn is chemotactic for lymphocytes but not for monocytes, a characteristic that makes it unique among chemokines. In addition, calcium flux desensitization studies indicate that Ltn uses a unique receptor. The human Ltn gene maps to a different chromosome than do the C-C and C-X-C chemokine families. Taken together, these characteristics indicate that Ltn is the first example of a new class of human chemokines with preferential effects on lymphocytes.

Amino Acid Sequence↗

Interleukin 13 suppresses cytokine production and stimulates the production of 15-HETE in PBMC. A comparison between IL-4 and IL-13.

We examined the ability of rIL-13 to regulate rIL-l alpha induced IL-1 beta, IL-1 receptor antagonist (IL-1ra) and IL-8 production in cultured peripheral blood mononuclear cells (PBMC), endothelial cells and fibroblasts. Furthermore we examined whether rIL-13 could influence the production of the arachidonic acid products LTB4, 12-HETE and 15-HETE by PBMC. rIL-1 alpha-stimulated PBMC cultures secreted high levels of IL-1 beta and IL-8; this could be inhibited to the level of unstimulated control cells by co-incubation with rIL-13 (10 ng/ml). IL-13 induced a 3-fold increase of the IL-1ra secretion which was inhibited by rIFN-gamma. In the presence of both rIL-1 alpha and rIL-13, endothelial cells increased IL-8 secretion, whereas dermal fibroblasts remained unchanged. Of the arachidonic acid metabolites examined, the greatest change was observed in the formation of 15-HETE. In unstimulated PBMC cultures the amount of 15-HETE was less than 4 ng/10(6) cells, whereas after addition of rIL-13 we measured a formation of 139 +/- 6.2 ng/10(6) cells. The effect of rIL-13 on the 15-HETE formation in PBMC was abolished by addition of 100 U/ml rIFN-gamma. rIL-13 only induced minor changes in the LTB4 and 12-HETE formation. Compared to IL-4, IL-13 induced a similar alteration of the cytokine cascade and arachidonic acid metabolism, supporting the hypothesis that the two cytokines use a common receptor complex or signal pathway.

12-Hydroxy-5,8,10,14-eicosatetraenoic Acid↗

IL-4 and IL-13, but not IL-10, are chemotactic factors for human osteoblasts.

In this study we demonstrate that the cytokines IL-4 and IL-13, but not IL-10, can induce osteoblast chemotaxis. Recombinant IL-4 (rIL-4) and rIL-13 mediated cell migration was observed using a modified multi-well Boyden chamber system. Maximum chemotaxis was observed at concentrations of 100 ng/ml of both rIL-4 and rIL-13 with a chemotactic index of 2.0 +/- 0.1 and 2.3 +/- 0.4, respectively in this system, whereas IL-10 did not show chemotactic abilities for osteoblasts. Our results suggest that IL-4 and IL-13 could take part in the recruitment of osteoblasts and thereby be of importance in the cytokine regulation of bone resorption and healing.

Cells, Cultured↗

Peptide modulation of allergen-specific immune responses.

In vitro peptide stimulation of allergen-reactive T-helper type 1 and type 0 cells, in the absence of costimulatory signals, induces anergy that is accompanied by the modulation of cell surface phenotype and changes in cytokine production. In experimental animal models, the administration of allergen-derived peptides may result in the downregulation of cytokine and antibody production, which is preceded by transient activation of CD4+ T cells, without the induction of effector immunity. Preliminary results of clinical trials using allergen-derived peptides for desensitization are becoming available and should provide some insight into the efficacy of peptide therapy in man.

Antigenic Modulation↗

Antagonizing the differentiation and functions of human T helper type 2 cells.

Allergen-specific T cells from atopic patients generally belong to the T-helper type 2 subset. IL-4 and IL-13 produced by these cells induce IgE synthesis by B cells and play a major role in allergic disease mediated by IgE. Recent advances in our understanding of the differentiation and IgE-inducing activities of T-helper type 2 cells suggest that targeting allergen-specific T cells may provide a novel way to intervene in allergy.

Animals↗

Differential regulation of IL-13 and IL-4 production by human CD8+ and CD4+ Th0, Th1 and Th2 T cell clones and EBV-transformed B cells.

In the present study, the requirements and characteristics for the production of IL-13 by human T cells, T cell clones and B cells were determined and compared with those of IL-4. IL-13 was produced by human CD4+ and CD8+ T lymphocyte subsets isolated from peripheral blood mononuclear cells and by CD4+ and CD8+ T cell clones. CD4+ T cell clones belonging to Th0, Th1-like and Th2-like subsets produced IL-13 following antigen-specific or polyclonal activation. In addition, EBV-transformed B cell lines expressed IL-13 mRNA and produced small amounts of IL-13 protein. Expression of IL-13 mRNA and production of IL-13 protein by peripheral blood T cells and T cell clones was induced rapidly and was relatively long lasting, whereas IL-4 production by these cells was transient. In addition, IL-13 mRNA expression was induced by modes of activation that failed to induce IL-4 mRNA expression. IL-13 shares many biological activities with IL-4 which is compatible with the notion that the IL-13 and IL-4 receptors share a common component required for signal transduction. However, IL-13 lacks the T cell-activating properties of IL-4. Here we have shown that this is related to the fact that T cells fail to bind radiolabeled IL-13 and do not express the IL-13-specific receptor component. Taken together, these results indicate that the differences in expression and biological activities of IL-4 and IL-13 on T cells may have consequences for the relative roles of these cytokines in the immune response.

B-Lymphocytes↗

Clonal analysis of CD4 mediated accessory function on the effector activity of human CD4+ T cell subsets.

BACKGROUND: It has been reported for the peripheral T cell repertoire that CD4 molecules may enhance adhesion between T cells and antigen presenting cells and, through their physical association with T cell antigen receptors, contribute to signal transduction. OBJECTIVE: The aims of this study were to determine if the modulation of CD4 molecules had differential effects on T cell recognition, antigen induced cytokine (IL-4 and IFN gamma), release and the induction of specific anergy for human TH-0, Th-1 and TH-2 cells. METHODS: A panel of anti-CD4 antibodies was examined for its ability to modulate T cell proliferation, cytokine production and tolerance induction in house dust mite (TH-0 and TH-2) and influenza haemagglutinin (TH-1) specific human CD4+ T cell clones all restricted by DRB1*1101 and isolated from dust mite allergic individuals. RESULTS: We observed that anti-CD4 antibodies may inhibit or enhance antigen mediated T cell proliferation, which may reflect the differential requirements of T cells for selective functions of CD4. Furthermore, IFN gamma and IL-4 production was differentially modulated depending on the specificity of the anti-CD4 antibody and the clone of T cells. However, pretreatment of T cells with anti-CD4 antibody alone neither induced nor enhanced the susceptibility of T cells to peptide mediated anergy. CONCLUSION: Antigen recognition by different subsets of human CD4+ T cells has differential requirements on CD4, whereas the induction of specific anergy appeared to be independent of the functions of CD4 molecules. Antigen induced IFN gamma production was more susceptible than IL-4 to the inhibitory effects of anti-CD4 antibodies. Furthermore, it appeared that certain anti-CD4 antibodies can dissociate antigen induced IFN gamma and IL-4 production, and may downregulate IFN gamma synthesis without inhibiting antigen dependent proliferation.

Antibodies↗

Interleukin-13 expression in the nasal mucosa of perennial allergic rhinitis.

Allergic rhinitis is an IgE mediated atopic disease characterized by elevated levels of allergen specific IgE antibodies that play a central role in mediating allergic reactions. Interleukin 13 (IL-13) is a novel T-cell-derived cytokine that shares several functional properties with IL-4 and has been demonstrated to be capable of inducing IgE synthesis. The present study was designed to investigate the expression of IL-13 gene in the epithelial compartment of the nasal mucosa of patients with perennial allergic rhinitis (PAR) to house dust mite, comparing it with that in the nasal epithelial compartment of chronic infectious rhinitis (CIR) patients and normal volunteers (NV). We also investigated the IL-13 gene expression in the peripheral blood of PAR patients. Nasal scrapings were collected from the inferior turbinate of patients undergoing conchotomy surgery and from outpatients, and the mRNA expression of IL-13 was analyzed by the RT-PCR method. Peripheral blood mononuclear cells were isolated by density-gradient centrifugation and the expression of IL-13 gene was examined by the RT-PCR method. IL-13 expression at protein level and its cell source were analyzed by immunohistochemistry of inferior turbinate biopsies. The levels of total serum IgE and allergen-specific IgE antibodies in the serum were estimated by the PRIST and CAP RAST method, respectively. IL-13 gene expression was detected in the epithelial compartment of the nasal mucosa of 18/19 PAR patients but was undetected in normal volunteers and CIR patients.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Antigen presentation by human dermal microvascular endothelial cells. Immunoregulatory effect of IFN-gamma and IL-10.

Human dermal microvascular endothelial cells (HDMEC) play a central role in many aspects of the inflammatory and immune reactions in skin. HDMEC display a phenotypic diversity ranging from cells with an epithelioid morphology to those that show both morphologic and biochemical characteristics of macrophages. Here it is shown that HDMEC possess the capability to both process and present Ags. T lymphocyte clones specific for peptide p94-104, which are derived from the protein of group I allergen of Dermatophagoides pteronyssinus, a major house dust mite allergen, and restricted by HLADR11, proliferated specifically to stimulation with the group I allergen of D. pteronyssinus and with peptide p94-104 presented by HDMEC. Preincubation for 48 h with IFN-gamma enhanced the expression of class II MHC Ags on HDMEC, which in turn increased the capacity of HDMEC to present Ag. When HDMEC were primed with Ag in the presence of IL-10, a 75% inhibition of Ag-specific T cell proliferation was observed. IL-10 also inhibited T cell proliferation induced by IFN-gamma-stimulated HDMEC. These findings demonstrate that HDMEC possess the ability to process and present Ag to CD4+ T cells and that these reactions are stimulated by IFN-gamma and inhibited by IL-10. The reduced Ag-presenting capacity of HDMEC mediated by IL-10 is not associated with a down-regulation of class II MHC expression. No significant reduction of HLA-DR expression was detected either at the protein or gene level when HDMEC were incubated with IFN-gamma and IL-10 as compared with incubation with IFN-gamma alone. The profound down-regulatory effect of IL-10 on Ag presentation may provide a new pharmacologic approach to control inflammatory responses in skin.

Adult↗

In vitro maturation of human neonatal CD4 T lymphocytes. II. Cytokines present at priming modulate the development of lymphokine production.

The development of naive CD4 T cells into type 1 or type 2 Th cells has been extensively analyzed in the mouse. Using neonatal CD4 T lymphocytes as a source of human naive cells, we report that these cells may be induced to differentiate into effector cells producing predominantly Th1 or Th2 cytokines. After 3 days of stimulation with anti-CD3 mAb immobilized on CD32 transfected mouse fibroblasts, followed by 3 days of culture in the presence of IL-2, neonatal cells acquire the phenotypic and functional characteristics of effector cells. Primed cells are enriched in CD45R0hi and CD31- cells, and upon stimulation with PMA+ ionomycin they release significant amounts of IL-2, IFN-gamma, IL-4, IL-5, and IL-10. Addition of exogenous cytokines during the period of activation with anti-CD3 markedly alters the profile of cytokine production by primed cells: 1) IL-2 uniformly enhances Th1 and Th2 cytokine production; 2) IL-4 markedly enhances the release of IL-4, IL-5, and IL-10 and suppresses that of IFN-gamma; 3) IFN-gamma strongly inhibits IL-4 and IL-5 production but slightly enhances IFN-gamma release; 4) IFN-alpha markedly inhibits IL-4 and IL-5 production and increases the production of both IFN-gamma and of IL-10; 5) TGF-beta suppresses IL-4 and IL-5 (and to a lesser extent IL-2) production but has inconsistent effect on IL-10 and IFN-gamma production. These effects of exogenous cytokines are not associated with an alteration of CD31 expression on primed cells.

Animals↗