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Biomedical subjects

H Yssel

Publications and source records attributed to H Yssel.

At least 73 records · Page 4Linked to original sources

In vitro maturation of human neonatal CD4 T lymphocytes. I. Induction of IL-4-producing cells after long-term culture in the presence of IL-4 plus either IL-2 or IL-12.

Recent studies in the mouse have established that IL-4 and IL-12 direct the development of Ag-stimulated naive CD4 T cells into, respectively, type 2 and type 1 Th cells. We report that prolonged exposure of immunologically naive and unstimulated human neonatal CD4 T cells to IL-4 or to IL-4 plus either IL-2 or IL-12 markedly affects their cytokine production on primary stimulation with PMA and ionomycin. IL-4 induces long-term proliferation of neonatal T cells and after 3 wk of culture these are capable of producing high levels of Th1 (IL-2, IFN-gamma) but no Th2 (IL-4, IL-5) cytokines; IL-4-primed cells are homogenously CD45RO-/RA+ and CD31+. After culture in the presence of IL-4 + IL-2 or IL-4 + IL-12, neonatal T cells are enriched in CD45RO+ and CD31- cells and they can produce Th2 as well as Th1 cytokines. In response to primary stimulation with PMA and ionomycin, cells primed with IL-4 + IL-2 produce IL-4, IL-5, and IL-10 and the same levels of IL-2 and IFN-gamma as IL-4-primed cells. Cells primed with IL-4 + IL-12 produce very high levels of both IL-4 and IFN-gamma but no IL-5. Endogenous IFN-gamma that is detected in primary cultures containing IL-4 + IL-12 does not inhibit, but rather enhances, the ability of the cells to produce IL-4. Further analysis of IL-4 + IL-12-primed cells reveals that IL-4 is mainly produced by CD31- cells and that these cells can trigger B cells to synthesize Ig including IgE. Finally, positively selected CD31+ cells remain CD31+ and are poor IL-4 producers after 3 wk of culture with IL-4 + IL-12, suggesting that these two cytokines promote the selective expansion of the small number of CD31- cells that are present in freshly isolated neonatal CD4 T cells.

Adult↗

Induction of non-responsiveness in human allergen-specific type 2 T helper cells.

Activation of allergen-reactive human T helper (Th)2 cells in the absence of professional antigen-presenting cells, induces non-responsiveness or anergy in these cells in vitro. This induction of anergy is accompanied by phenotypic modulation and altered cytokine production. Furthermore, peptide-treated Th2 cells fail to provide B-cell help for IgE synthesis. Recent studies indicate that impaired signal transduction via the T-cell receptor may account for the lack of responsiveness to antigenic stimulation. Here, we review present knowledge on the cell biology of non-responsive or anergic Th2 cells.

Allergens↗

Effects of prostaglandin E2 on Th0-type human T cell clones: modulation of functions of nuclear proteins involved in cytokine production.

The effects of prostaglandin E2 (PGE2) on cytokine production and proliferation of the CD4+ human helper T cell clone SP-B21 were investigated. In cells stimulated with anti-CD3 mAb, PGE2 inhibited cell proliferation and the production of all the cytokines examined. Addition of rIL-2 fully restored the proliferative response and partially restored the production of IL-4 and IL-5, but not that of other cytokines. In contrast, in cells stimulated with phorbol myristate acetate (PMA)/A23187, PGE2 enhanced the production of IL-4 and IL-5, and only partially inhibited the production of other cytokines. Therefore, the effects of PGE2 vary depending on the mode of T cell activation, and the IL-4 and IL-5 are regulated differently from other cytokines. In a mobility shift assay, only the NF-kappa B (p50/p50) homodimer was observed in a complex formed with the kappa B sequence in unstimulated SP-B21 cells. When cells were stimulated with anti-CD3 mAb or PMA/A23187, a complex formation of NF-kappa B (p50/p65) heterodimer with the kappa B sequence was induced. Interestingly, PGE2 or di-butyryl (Bt2)cAMP abolished the binding of NF-kappa B (p50/p65) heterodimer to the kappa B sequence in cells stimulated with anti-CD3 mAb but not with PMA/A23187. Our results suggest that the target of PGE2 action is a component in the signal transduction pathway leading to the activation of protein kinase C. However, the inhibition of the T cell activation signals by PGE2 is selective. PGE2 enhanced the complex formation with NF-AT, AP-1 and CLE0 sequences when the cells were activated by either anti-CD3 mAb or PMA/A23187 stimulation. It seems therefore that PGE2, by elevating cAMP levels, interferes with the activation pathway for NF-kappa B but not for NF-AT, AP-1 or CLE0 binding protein.

Base Sequence↗

IL-12 transiently induces IFN-gamma transcription and protein synthesis in human CD4+ allergen-specific Th2 T cell clones.

IL-12 is a cytokine produced by monocytes and Epstein-Barr virus-transformed B cells which initiates Th1 responses by inducing the development of CD4+, IFN-gamma producing Th1 T cells in mouse and human. We have previously reported that allergen-specific CD4+ Th2 T cell clones produce IFN-gamma, following activation by phorbol ester (TPA) and calcium ionophore, indicating that these cells still have the ability to produce IFN-gamma. This observation, together with the capacity of IL-12 to induce IFN-gamma, prompted us to examine the effects of rIL-12 on the cytokine production profiles of a panel of cloned allergen-specific Th2 cell lines, and compare these to the effects of rIL-12 on the cytokine production by Th0 and Th1 T cell clones. Activation with antigen or TPA/anti-CD3 mAb of Th2 T cell clones that had been preincubated with rIL-12 and rIL-2 for 5 days induced or enhanced the expression of IFN-gamma transcripts, as well as the production of IFN-gamma by these cells. Furthermore, in a different set of experiments, it was found that the presence of rIL-12 during a 12 h stimulation of Th2 T cell clones induced or enhanced the expression of IFN-gamma transcripts, as well as the production of IFN-gamma by these cells. rIL-12 also enhanced IFN-gamma production by Th0 and Th1 T cells, but, in contrast, rIL-12 had no effect on the production of IL-4, nor on the frequency of IL-4 producing cells, as judged by analysis of intracellularly produced cytokines.(ABSTRACT TRUNCATED AT 250 WORDS)

Allergens↗

IL-10 secretion of allergen-specific skin-derived T cells correlates positively with that of the Th2 cytokines IL-4 and IL-5.

In atopic individuals, allergen-specific CD4+ T lymphocytes often belong to the T-helper 2 (Th2) subset as they secrete the marker cytokines interleukin-4 (IL-4) and IL-5 but not interferon-gamma (INF-gamma). IL-10 is a cytokine the production of which, in the mouse system has been described to be restricted to the Th2 subset, but in the human was found to be produced by both Th1 and Th2 T cell clones (TCC). We have recently shown that house dust mite antigen (Dermatophagoides pteronyssinus)-specific TCC isolated from skin of patients with atopic dermatitis have a more polarized Th2 cytokine production profile than TCC obtained from the peripheral blood of these patients. In this study, we report that skin-derived TCC secrete more IL-10, IL-4 and IL-5, than TCC isolated from the blood of the same individual (p < 0.05). The difference was more significant with specific TCC than with non-specific TCC. Furthermore, there was a positive correlation between the production of IL-10 and that of IL-4 and IL-5, respectively. In addition, the amount of IL-4 and IL-5 secreted by specific TCC from the skin correlated positively. These results were confirmed by the detection of mRNA by PCR. Finally, our data confirm that in human blood-derived TCC IL-10 secretion is not related to a particular cytokine production profile. We suggest that the skin of AD provides an unique environment for the development of aTh2-like secretion pattern not only with respect to IL-4 and IL-5 but also regarding IL-10.

Allergens↗

Brequinar sodium, mycophenolic acid, and cyclosporin A inhibit different stages of IL-4- or IL-13-induced human IgG4 and IgE production in vitro.

We investigated the effect of cyclosporin A (CsA), mycophenolic acid (MPA), and brequinar sodium (BQ) on human IgG4 and IgE synthesis induced by IL-4 or IL-13. BQ inhibited IL-4 and IL-13-induced IgG4 and IgE synthesis in cultures of peripheral blood mononuclear cells (PBMC) or highly purified B cells costimulated by anti-CD40 mAbs in a dose-dependent fashion. CsA and MPA had either suppressive or enhancing effects depending on the concentrations tested. Interestingly, BQ inhibited IgG4 and IgE synthesis at concentrations of 10(-6)-10(-8) M, which did not affect T or B cell proliferation, indicating that the inhibitory effects of BQ on Ig production were not directly related to inhibition of T or B cell proliferation. In contrast, the inhibitory effects of MPA on Ig production were directly associated with inhibitory effects on T and B cell proliferation. CsA blocked T and B cell proliferation at the same concentration (10(-7) M) which enhanced IgG4 and IgE synthesis, indicating that reduction in T or B cell proliferation correlated with enhanced IgE production. CsA also inhibited CD40 ligand expression and IL-2, IL-4, IL-5, IFN-gamma, and GM-CSF production by activated CD4+ T cell clones, whereas MPA and BQ were ineffective, indicating that these compounds do not inhibit early events in T cell activation. Collectively, our data indicate that BQ, MPA, and CsA block different stages of the IgG4 and IgE production process. In addition, we observed that CsA and MPA, in contrast to BQ, at lower concentrations can also have potentiating effects on the production of these Ig isotypes.

Antigens, CD↗

Direct effects of IL-10 on subsets of human CD4+ T cell clones and resting T cells. Specific inhibition of IL-2 production and proliferation.

The direct effects of IL-10 on the proliferation and lymphokine production of human peripheral blood T cells and CD4+ T cell clones representing the Th0, Th1-like, and Th2-like Th cell subsets were investigated in the absence of professional APC. IL-10 partially inhibited the proliferative responses of CD4+ human T cell clones induced by anti-CD2 or anti-CD3 mAb cross-linked on CD32 (Fc gamma RII)-transfected mouse L cells. Transfection of ICAM-1 or LFA-3 in CD32+ L cells resulted in enhanced proliferative responses of CD4+ T cell clones after activation by anti-CD3 mAb, whereas transfection of B7 in CD32+ L cells enhanced proliferative responses of CD4+ T cell clones after activation by anti-CD2 mAb. In addition, B7 expression on CD32+ L cells was required for activation of small resting T cells by anti-CD3 or anti-CD2 mAb. IL-10 inhibited the proliferation of T cell clones induced by anti-CD2 or anti-CD3 mAb on CD32+ L cells expressing these accessory molecules, indicating that interactions of LFA-3, ICAM-1, and B7 with their ligands on T cells did not overcome the inhibitory effects of IL-10. Inhibition of proliferation of T cell clones by IL-10 was in all instances completely neutralized by relatively low concentrations of IL-2, whereas IL-4 was ineffective. IL-10 did not affect the expression of the TCR/CD3 complex, CD2, LFA-1, CD28, or IL-2R alpha- or beta-chains, nor did it inhibit the induction of the latter two molecules on T cells after activation. Inhibition of proliferation was found to be the result of specific inhibition of IL-2 production by the responding T cell subsets, which occurred at the mRNA level. The production and mRNA levels of IL-4, IL-5, IFN-gamma, and granulocyte/macrophage-CSF were not affected by IL-10. Taken together, these results indicate that IL-10/IL-10R interaction on CD4+ T cell clones and peripheral blood T cells results in signaling pathways that specifically interfere with activation processes leading to IL-2 production. These direct inhibitory effects on IL-2 production by activated T cells may contribute to the general immunosuppressive activities of IL-10.

Animals↗

Functional expression of B7/BB1 on activated T lymphocytes.

B7/BB1 is a membrane differentiation antigen expressed on activated B cells, macrophages, and dendritic cells that binds to a counter-receptor, CD28, expressed on T lymphocytes and thymocytes. Interaction between CD28 and B7 results in potent costimulation of T cell activation initiated via the CD3/T cell receptor complex. We now report that B7 is also expressed on activated human peripheral blood T cells, CD4 T cell clones, CD8 T cell clones, and natural killer cell clones. B7 appears relatively late after T cell activation, can be detected on both CD4 and CD8 T cell subsets, and is present on antigen-specific, major histocompatibility complex-restricted CD4 and CD8 T cell clones. Expression of B7 on activated T cells was confirmed by immunoprecipitation from 125I-labeled activated T cells and by detection of B7 transcripts. A B7+ CD4+ T cell clone was able to stimulate a primary allogeneic mixed lymphocyte response using small, resting peripheral blood T cells as responders. The alloantigen-induced proliferative response and cytokine production was partially inhibited by anti-B7 monoclonal antibody. Since activated T cells can coexpress both CD28 and its counter-receptor, B7, this suggests that activated T cells may be capable of autocrine costimulation via the CD28 activation pathway.

Antigens, CD↗

Regulation of IgE synthesis by T cells and cytokines.

Human IgE synthesis is tightly regulated by cytokines. IgE production by normal B cells is specifically induced by IL-4, but requires additional, yet to be defined, signals that are provided by CD4+ T cells. Single surface IgM+ B cells can be induced to proliferate and switch to IgG4 and IgE producing cells, indicating that the induction of IgE synthesis by IL-4 and CD4+ T cells reflects direct isotype switching. Although IL-4 is the sole inducing cytokine of IgE synthesis known thus far, multiple cytokines modulate IL-4 induced IgE synthesis in vitro. IFN-alpha, IFN-gamma TGF-beta and IL-10 are inhibitory, whereas IL-5, IL-6 and TNF-alpha act synergistically with IL-4. Results obtained with animal models, as well as from clinical studies in the human have indicated that IL-4, IFN-alpha and IFN-gamma are operational in vitro. Cocultivation of B cells with allergen-specific CD4+ T cell clones producing high levels of IL-4 and IL-5, but normal to undetectable levels of IL-2 and IFN-gamma, following activation resulted in the synthesis of IgE, in the absence of exogenously added IL-4. These results indicate that aberrant ratio's of IL-4 and IFN-gamma production are sufficient for induction of IgE synthesis in vitro.(ABSTRACT TRUNCATED AT 250 WORDS)

Cytokines↗

Interleukin-7 specifically induces the B7/BB1 antigen on human cord blood and peripheral blood T cells and T cell clones.

B7/BB1 is a cell surface molecule and member of the Ig super family that is constitutively expressed on dendritic cells. In addition, B7 is expressed on B cells, macrophages, T cells, and T cell clones following activation. Interaction of B7 with its natural ligand CD28 is required for optimal stimulation of T cells, activated via the TCR-CD3 complex, which is thought to be due to stabilization of cytokine mRNA. Here we demonstrate that the expression of B7 on T cells can specifically be induced by IL-7. Induction of B7 expression on T cells and T cell clones requires at least 5-7 days of culture and represents a late activation event. Results of studies using T cell clones, as well as resting purified B7- T cells, demonstrate that B7 is induced on a substantial proportion of T cells after IL-7 activation and is not due to an outgrowth of pre-existing B7+ T cells. In addition, CD4+ as well as CD8+ T cells could be induced to express B7. Stimulation of purified cord blood T cells with cross-linked anti-CD3 mAb resulted in a relatively fast (48 h) induction of B7, which could not be inhibited by a neutralizing anti-IL-7 mAb, whereas no endogenous IL-7 production by activated T cells and T cell clones could be detected. Together, these results indicate that the B7 molecule can be induced on T cells by IL-7, but also by an IL-7 independent pathway involving triggering of the TCR-CD3 complex.

Antigens, Surface↗

IL-10 is produced by subsets of human CD4+ T cell clones and peripheral blood T cells.

Murine IL-10 has been reported originally to be produced by the Th2 subset of CD4+ T cell clones. In this study, we demonstrate that human IL-10 is produced by Th0, Th1-, and Th2-like CD4+ T cell clones after both Ag-specific and polyclonal activation. In purified peripheral blood T cells, low, but significant, levels of IL-10 were found to be produced by the CD4+CD45RA+ population, whereas CD4+CD45RA- "memory" cells secreted 5- to 20-fold higher levels of IL-10. In addition, IL-10 was produced by activated CD8+ peripheral blood T cells. Optimal induction of IL-10 was observed after activation by specific Ag and by the combination of anti-CD3 mAb and the phorbol ester tetradecanoyl phorbol acetate, whereas the combination of calcium ionophore A23187 and 12-O-tetradecanoylphorbol-13-acetate acetate was a poor inducer of IL-10 production. Kinetic studies indicated that IL-10 was produced relatively late as compared with other cytokines. Maximal IL-10 mRNA expression in CD4+ T cell clones and purified peripheral blood T cells was obtained after 24 h, whereas maximal IL-10 protein synthesis occurred between 24 h and 48 h after activation. No differences were observed in the kinetics of IL-10 production among Th0, Th1-, and Th2-like subsets of CD4+ T cell clones. The results indicate a regulatory role for IL-10 in later phases of the immune response.

Antigens, CD↗

Yersinia enterocolitica activates a T helper type 1-like T cell subset in reactive arthritis.

The profile of lymphokines secreted by 14 T cell clones and 24 T cell lines reactive with Yersinia Ag isolated from the synovial fluid cells of two HLA-B27+ patients with Yersinia-triggered reactive arthritis was characterized. In response to Ag-specific or -nonspecific stimulation, all of the Yersinia-reactive T cell clones and lines had a pattern of lymphokine secretion resembling that of murine (Th1) cells. A total of 50% of T cell lines and clones randomly isolated from a reactive arthritis patient, without prior in vitro stimulation with Yersinia Ag, also exhibited a Th1-like profile of cytokine secretion upon nonspecific activation. This indicates that the selective expansion of this subset of T cells had already occurred in vivo. The possibility that the predominance of Th1-like T cells was an artefact generated by the T cell cloning procedure was excluded; 50% of the randomly isolated T cell clones and lines produced IL-4, IL-5, or both cytokines upon nonspecific activation. These results indicate that Yersinia Ag selectively activate a Th1-like subset of T cells in patients with Yersinia-triggered reactive arthritis. Accumulation of such cells in the synovial tissue of patients with reactive arthritis may play a key role in the pathogenesis of this disease.

Antigens, Bacterial↗

T cell activation-inducing epitopes of the house dust mite allergen Der p I. Proliferation and lymphokine production patterns by Der p I-specific CD4+ T cell clones.

Cloned human CD4+ T cell lines specific for the house dust mite Dermatophagoides pteronyssinus were used to map minimal T cell activation-inducing epitopes on the Group I allergen in D. pteronyssinus extracts (Der p I) molecule. Most of these Der p I-specific T cell clones expressed different TCR V alpha and V beta gene products. Using recombinant deletion proteins, three T cell epitopes were identified on the Der p I molecule; p45-67 and p117-143 were recognized by HLA-DR7-restricted T cells, whereas p94-104 was recognized in the context of HLA-DR2, DRw11 (DR5), and -DR8 molecules. This degenerate class II MHC restriction appears to be due to shared Phe and Asp residues at positions 67 and 70, respectively, in the third variable domain of the HLA-DR beta chain. All three T cell epitopes induced Th2-like cytokine production profiles by the Der p I-specific T cell clones, which were characterized by the production of very high levels of IL-4 and IL-5, as compared with those secreted by tetanus toxin-specific T cell clones derived from the same patients, but no or low amounts of IL-2 and IFN-gamma. This Th2-like production profile was, however, not an intrinsic property of the Der p I-specific T cells, but was dependent upon their mode of activation. Stimulation with Con A also induced very low or no measurable levels of IL-2 and IFN-gamma, whereas activation with TPA and the calcium ionophore A23187 resulted in the production of high levels of IL-4, IL-5, IL-2, and IFN-gamma. These results indicate that Der p I-specific T cell clones are not defective in their capacity to produce high levels of Th1 cytokines.

Allergens↗

Epitopes on the outer surface protein A of Borrelia burgdorferi recognized by antibodies and T cells of patients with Lyme disease.

We have characterized immunogenic epitopes of the 31-kDa outer surface protein A (OspA) protein of Borrelia burgdorferi, which is a major surface Ag of the spirochete causing Lyme disease. Full length and truncated forms of rOspA proteins were expressed in Escherichia coli, and their reactivities with antibodies and human T cell clones isolated from patients with Lyme disease were determined. The epitopes recognized by three of four OspA-reactive T cell clones are contained within the 60 COOH-terminal amino acids. Each of the four OspA-reactive T cell clones has a different HLA class II molecule involved in Ag recognition and recognizes a distinct epitope. One T cell clone promiscuously recognized an epitope in the context of different HLA-DQ molecules. In addition, the binding of a murine monoclonal anti-OspA antibody, as well as antibodies in sera of three of five patients with Lyme disease, was dependent upon the amino acids in the carboxy-terminal protion of this protein. Taken together, our results indicate that the 60 COOH-terminal amino acids of OspA contain epitopes recognized by human antibodies and T cells.

Antibodies, Bacterial↗

Membranes of activated CD4+ T cells expressing T cell receptor (TcR) alpha beta or TcR gamma delta induce IgE synthesis by human B cells in the presence of interleukin-4.

In the present study it is demonstrated that human B cells can be induced to switch to IgE production following a contact-mediated signal provided by activated T cell receptor (TcR) gamma delta+, CD4+ and TcR alpha beta+, CD4+ T cell clones and interleukin (IL)-4. The signal provided by these T cell clones was antigen nonspecific, indicating that the TcR alpha beta/CD3 or TcR gamma delta/CD3 complexes were not involved in these T-B cell interactions. Activated TcR alpha beta+, CD8+, and TcR gamma delta+, CD4-CD8-, or resting CD4+ T cell clones were ineffective. Intact TcR alpha beta+ or TcR gamma delta+, CD4+ T cell clones could be replaced by plasma membrane-enriched fractions isolated from these activated CD4+ T cell clones. In contrast, membranes isolated from resting TcR alpha beta+, CD4+, TcR gamma delta+, CD4+ T cell clones or an Epstein-Barr virus (EBV)-transformed B cell line (EBV-LCL) failed to provide the costimulatory signal that, in addition to IL-4, is required for induction of IgE synthesis. As described for intact CD4+ T cells, CD4+ T cell membranes induced purified surface IgM+ B cells to switch to IgG4- and IgE- but not to IgA-producing cells, excluding the possibility of a preferential outgrowth of IgG4- and IgE-committed B cells. The membrane activity was inhibited by protease or heat treatment. Induction of IgE synthesis by B cells co-cultured with both TcR alpha beta+, CD4+ and TcR gamma delta+, CD4+ T cell clones and membrane preparations of these cells was blocked by anti-class II major histocompatibility complex (MHC) monoclonal antibodies (mAb), whereas various anti-CD4 mAb had differential blocking effects. Murine L cells, or EBV-LCL transfected with CD4 could not replace CD4+ T cell clones. These results indicate that, although CD4 and class II MHC antigens are required for productive CD4+ T cell clone-B cell interactions, an additional signal, provided by a membrane associated (glyco)protein that is induced by activation of both TcR alpha beta and TcR gamma delta, CD4+ T cells, is needed for induction of IgE production in the presence of IL-4.

Antibodies, Monoclonal↗

Interleukin-10.

Despite the short history of interleukin-10, accumulated evidence indicates that this interleukin plays a major role in suppressing immune and inflammatory responses. Yet interleukin-10 also maintains cell viability and acts as a cofactor to promote the growth of lymphoid and myeloid cells in vitro. Here we review the present knowledge on the structure and function of interleukin-10.

Animals↗