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Biomedical subjects

H Gascan

Publications and source records attributed to H Gascan.

At least 55 records · Page 3Linked to original sources

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↗

Modulation of IL-4 induced germline epsilon RNA synthesis in human B cells by tumor necrosis factor-alpha, anti-CD40 monoclonal antibodies or transforming growth factor-beta correlates with levels of IgE production.

To determine the role of germline epsilon transcription in IgE synthesis, the effects of cytokines on germline epsilon RNA synthesis in IL-4 dependent epsilon switching in B cells was investigated. Induction of germline epsilon transcription in highly purified B cells seems to be a specific property of IL-4, since none of the other cytokines tested [IL-1 alpha, beta, IL-2, IL-3, IL-5, IL-6, IL-7, IL-9, IL-10, G-CSF, GM-CSF, M-CSF, IFN-gamma, IFN-alpha, tumor necrosis factor (TNF)-alpha, and transforming growth factor (TGF)-beta] were effective. TGF-beta, IFN-gamma, and IFN-alpha inhibit IL-4 dependent IgE synthesis, but only TGF-beta blocked germline epsilon RNA synthesis in purified B cells, indicating that this may be the mechanism by which TGF-beta inhibits IgE synthesis, and that IFN-gamma and IFN-alpha act on other stages of the regulatory process resulting in IgE production. IL-5, IL-6, and TNF-alpha enhance IL-4 dependent IgE synthesis, but only TNF-alpha enhanced IL-4 induced germline epsilon RNA synthesis. Finally, anti-CD40 mAbs and the non-IL-4 producing CD4+ T cell clone A3, which in the presence of IL-4 induce IgE synthesis by purified B cells, both strongly enhanced germline epsilon transcription. These data, together with the observation that epsilon switching in cultures initiated with single sIgM+, sIgE- B cells in all instances was preceded by germline epsilon RNA synthesis, indicate that there is a strong relationship between germline epsilon transcription and IgE synthesis.

Antibodies, Monoclonal↗

Anti-CD40 monoclonal antibodies or CD4+ T cell clones and IL-4 induce IgG4 and IgE switching in purified human B cells via different signaling pathways.

IL-4 induces IgE and IgG4 synthesis, but in addition to IL-4, a second signal provided by CD4+ T cells is required. Here we demonstrate that the signal provided by CD4+ T cells can be replaced by anti-CD40 mAb. Highly purified surface (sIgM+) human B cells cultured with soluble anti-CD40 mAb in the presence of IL-4 produced IgM, total IgG, IgG4, and relatively high levels of IgE, indicating that production of these isotypes represented H chain switching and was not the result of a selective outgrowth of isotype committed B cells. No IgA was produced in these cultures. However, the T cell signal was different from the signal provided by anti-CD40 mAb, because in contrast to CD4+ T cells, anti-CD40 mAb failed to induce germ-line epsilon transcripts. However, anti-CD40 mAb strongly enhanced germ-line epsilon mRNA expression induced by IL-4. In addition, IFN-gamma, IFN-alpha, and anti-CD23 mAb, which block IL-4-induced IgE production by PBMC, or B cells cocultured with CD4+ T cell clones, failed to inhibit IgG4 and IgE synthesis induced by anti-CD40 mAb. Finally, anti-CD40 mAb and CD4+ T cell clones had strong synergistic effects on IgG4 and IgE synthesis. These results indicate that different B cell activation pathways can result in IgG4 and IgE switching in the presence of IL-4.

Antibodies, Monoclonal↗

Human B cell clones can be induced to proliferate and to switch to IgE and IgG4 synthesis by interleukin 4 and a signal provided by activated CD4+ T cell clones.

In the present study, it is demonstrated that cloned surface IgM-positive human B cells can be induced to proliferate and to switch with high frequencies to IgG4 and IgE production after a contact-mediated signal provided by T cell clones and interleukin 4 (IL-4). This T cell signal is antigen nonspecific and is provided by activated CD4+ cells, whereas activated CD8+ or resting CD4+ T cell clones are ineffective. 15-35% of the B cell clones cultured with cloned CD4+ T cells and IL-4 produced antibodies; 35-45% of those wells in which antibodies were produced contained IgE and IgG4. In addition to B cell clones that produced IgG4 or IgE only, B cell clones producing multiple isotypes were observed. Simultaneous production of IgG4 and IgE, IgM, IgE, and IgM, or IgG4 and IgE was detected, suggesting that during clonal expansion switching might occur in successive steps from IgM to IgG4 and IgE. In addition, production of only IgM, IgG4, and IgE during clonal expansion indicates that this isotype switching is directed by the way a B cell is stimulated and that it is not a stochastic process.

Antibodies, Monoclonal↗

Regulation of IgE synthesis by cytokines.

Considerable progress has been made in our understanding of the mechanisms underlying regulation of human IgE synthesis. Interleukin-4 induces IgE production specifically, but costimulatory signals provided by T cells are required. Other cytokines modulate interleukin-4-induced IgE synthesis. The roles of T cells and cytokines in regulating IgE switching are discussed.

Antibody Diversity↗

Regulation of human IgE synthesis: the role of CD4+ and CD8+ T-cells and the inhibitory effects of interferon-alpha.

Interleukin-4 (IL-4) has been shown to induce immunoglobulin E (IgE) synthesis by human peripheral blood lymphocytes (PBL). Here we show that highly purified B-cells (greater than 99.5%) failed to produce IgE in the presence of IL-4 but IgE synthesis was restored by the addition of autologous CD4+ T-cells or by CD4+ T-cell clones with non-relevant specificities, derived from different donors. In contrast, autologous CD8+ T-lymphocytes or one allogeneic CD8+ T-cell clone failed to restore IgE synthesis. Moreover, autologous CD8+ T-cells suppressed IgE synthesis induced by autologous CD4+ T-cells in a dose-dependent fashion. IgE production could be induced in cultures containing as few as 20 B-cells. Collectively these data indicate that in addition to IL-4, a second signal derived from CD4+ T-cells is required to induce B-cells to switch to IgE producing cells. In a second set of experiments we showed that IFN-alpha blocked both IL-4-induced IgE synthesis by PBL of healthy donors and spontaneous IgE synthesis by PBL of allergic or atopic patients in a dose-dependent fashion. This inhibition occurred at the IgE messenger ribonucleic acid (mRNA) transcription level. The strongest inhibitory effects of interferon-alpha (IFN-alpha) were observed at the 2.2 kb productive mRNA transcript, whereas weaker inhibitory effects were observed on the 1.7 kb germline IgE mRNA transcript.(ABSTRACT TRUNCATED AT 250 WORDS)

B-Lymphocytes↗

Induction of leukemia inhibitory factor secretion by interleukin-1 in a human T lymphoma cell line.

The control of leukemia inhibitory factor (LIF) secretion by interleukin-1 (IL-1) was studied in the HSB2 human T lymphoma cell line. We show that in the presence of phytohemagglutinin (PHA), the addition of IL-1 in the culture medium induced a strong increase in the level of secreted LIF, as detected with the DA1.a test cell line. Subclones of the HSB2 cell line obtained by limiting dilution, and selected for their high level of LIF secretion, after phorbol myristate acetate (PMA) treatment, were more carefully analyzed. In the same conditions of stimulation, a 50X increase in the amount of secreted LIF was observed with the 2B3 subclone, whereas the 3C2 subclone gave a very weak signal in response to the stimulation. Several other chemical reagents and a panel of recombinant cytokines including IL-2, -3, -4, -5, and -6, granulocyte monocyte colony-stimulating factor (GM-CSF), monocyte-CSF (M-CSF), tumor necrosis factor-alpha (TNF-alpha), and interferon-gamma (IFN-gamma) were tested for their induction of LIF secretion. None of the other tested components was as potent as IL-1 (100 U/ml) and 1% PHA. A half maximal response was obtained with a concentration of 15-20 pM IL-1.

Growth Inhibitors↗

Structure and expression of germline epsilon transcripts in human B cells induced by interleukin 4 to switch to IgE production.

Interleukin 4 (IL-4)-induced IgE production coincides with the appearance of the 2.2-kb productive epsilon-mRNA, but is preceded by synthesis of a 1.7-kb epsilon-RNA. Analysis of cDNA copies of the 5' end of this RNA indicated that the 1.7-kb epsilon-RNA is a germline epsilon immunoglobulin heavy chain transcript with an exon mapping 5' to the switch region. Transcription through switch regions has been implicated in the control of class switching. However, IL-4 or cloned CD4+ T cells were able to induce germline epsilon transcripts without inducing IgE synthesis, for which both signals were required. These results indicate that induction of human germline epsilon-RNA does not necessarily result in IgE synthesis, and that additional regulatory mechanisms are involved in class switching.

B-Lymphocytes↗

Constitutive production of human interleukin for DA cells/leukemia inhibitory factor by human tumor cell lines derived from various tissues.

The cytokine HILDA (human IL for DA cells)/LIF (leukemia inhibitory factor), previously reported to trigger the proliferation of the DA1.a cell line was purified to homogeneity from the culture supernatant of the 5637 bladder carcinoma cell line by using a four step procedure, including cationic exchange chromatography at pH 6, Con A affinity chromatography, reverse phase HPLC, and gel filtration HPLC. The purified radiolabeled protein was analyzed in SDS-PAGE and a single band with a molecular mass of 43 kDa was revealed. The iodinated material was then tested in a radioreceptor assay using the M1 cell line as a second target cell line. The binding of the natural 125I hormone was abrogated in a dose dependent and specific fashion by either natural and rHILDA. The limit of signal detection of displacement for the radiolabeled ligand by unlabeled sample was found to be 0.05 ng/ml. The proliferative DA1.a assay and the M1 radioreceptor assay were used to analyze the HILDA content of 17 human tumor cell line culture supernatants, and 12 among them were spontaneously secreting a detectable level of LIF. The secreted amount of HILDA was largely enhanced by treating the cell line with 30 to 80 nM PMA; in these conditions a 10 to 20x increase in the detected amount was observed. The specificity of the detected signal was reinforced by analyzing the mRNA expression of HILDA in the tumor cell lines. The secreting cell lines were found to express various forms of LIF transcripts with a major specie at 3.8 kb.

Animals↗

Inducible production of macrophage colony-stimulating factor (CSF-1) by malignant and normal human T cells.

The CEM-ON malignant T cell line and long-term cultured normal T cells can be induced to release CSF-1 in their culture supernatants. Chemical inducers (PMA + A23187) and, more interestingly, cytokines (tumor necrosis factor alpha (TNF alpha) and interleukin-1 alpha (IL-1 alpha)), as well as physiological (antigen + IL-2) or specific (anti-CD3 + IL-2 or PMA) stimuli, lead to rapid transient colony-stimulating factor-1 (CSF-1) gene expression and production of biologically active CSF-1. These data suggest that CSF-1 may play a role in the early phases of immune response.

Antigens, Differentiation, T-Lymphocyte↗

Characterization and NH2-terminal amino acid sequence of natural human interleukin for DA cells: leukemia inhibitory factor. Differentiation inhibitory activity secreted by a T lymphoma cell line.

Six human T lymphomas and an NK-like cell line were tested for their ability to produce HILDA, one of the two human growth promoting activities for the DA1.a cells. Among them, the HSB2 cell line turned out to be the only one secreting significant HILDA activity (200-400 units/ml) after activation with 50 nM phorbol myristate acetate. Subclones of the HSB2 cell line were obtained by limiting dilution experiments. One of them (2B3) was found to secrete 1,000-5,000 units/ml of HILDA after phorbol myristate acetate activation in the presence of 10% fetal calf serum and 200-500 units/ml in serum-free conditions. 2B3-HILDA was purified from serum-free conditioned medium by a four-step procedure including fast flow cationic exchange at pH 6, concanavalin A chromatography, reverse-phase high performance liquid chromatography and gel-filtration high performance liquid chromatography. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis analysis of the purified radiolabeled cytokine revealed a single band of Mr 43,000, which co-electrophoresed with the biological activity. The NH2-terminal amino acid sequence of the first residues of the protein were determined and found to be similar to the equivalent residues deduced from the molecularly cloned cytokine. Isoelectric point determination revealed some charge heterogeneity of HILDA, which focused to pH 8.5-9 after neuraminidase treatment. Carbohydrate content of the cytokine was studied by deglycosylation experiments which showed that the O-linked oligosaccharides represented 2,000-3,000 and that the N-linked sugars account for half of the apparent molecular weight of HILDA.

Amino Acid Sequence↗

Response of murine IL3-sensitive cell lines to cytokines of human and murine origin.

We analyzed the proliferative response of DA1, DA1-a, NFS 60, 32DC1, Ea 3-17 and FDCP2 murine interleukin 3 (mIL3)-sensitive cell lines to human recombinant IL1 alpha, IL1 beta, IL2, IL4, IL5, IL6, granulocyte-CSF (G-CSF), macrophage-CSF (M-CSF), granulocyte-macrophage-CSF (GM-CSF), interferon gamma (IFN gamma), tumor necrosis factor (TNF) alpha, gibbon IL3, purified HILDA and mouse recombinant IL3, IL4, GM-CSF. All cell lines responded to mIL3 and IL4. Various response patterns were observed with human IL2, G-CSF and murine GM-CSF. Human IL4 and GM-CSF were absolutely inefficient in triggering proliferation of lines sensitive to their murine counterparts, confirming the species specificity of these two cytokines. Among the cell lines responding to G-CSF, some variations in sensitivities were observed. Thus the 32DC1 cell line needed 10 to 30 times more G-CSF to reach the same level of proliferation as the NFS60 cell line. DA1-a was the only factor-dependent cell line responding to purified HILDA, and IL6 was found to trigger proliferation of the NFS60 cell line, with a half-maximum effect observed for 0.1 pM of hormone.

Animals↗

Biochemical characterization and purification of HILDA, a human lymphokine active on eosinophils and bone marrow cells.

We previously described a lymphokine termed HILDA (for human interleukin DA) produced by T-lymphocyte alloreactive clones after antigenic stimulation. This factor sustains the growth of a murine IL3-sensitive cell line (DA2). In addition, HILDA is a potent activator of eosinophils and displays a burst-promoting activity on human bone marrow. In the present study, HILDA was purified to homogeneity from T-cell clone supernatant using successively sequential concentration, concanavalin A (ConA) affinity chromatography with differential elution (alpha-D glucopyranoside and alpha-D mannopyranoside), high-performance liquid chromatography (HPLC) gel filtration and reverse-phase HPLC. The pure material appeared as a 38-kd glycoprotein on sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) under reducing or nonreducing conditions. Biologic activity could be recovered from SDS-PAGE gel slices corresponding to the 38-kd band. We conclude from the specificity of the DA-2 cell line and biochemical characteristics described that this lymphokine is different from other known factors produced by human T lymphocytes.

Biological Assay↗

Characterization of a factor produced by human T cell clones exhibiting eosinophil-activating and burst-promoting activities.

It has long been suggested that eosinophil response observed in certain immunological reactions depends on the release of soluble products from sensitized lymphocytes when exposed to the challenging antigen. We were able to show that alloreactive T cell clones (ATLC) obtained from human rejected kidney produced, when stimulated with specific antigen (kidney donor-B lymphoblastoid cell line) and interleukin 2, a factor triggering the proliferation of a subline (DA-2) of the interleukin 3 sensitive DA-1 murine cell line. The biochemical features of this factor called HILDA (human interleukin DA) and the DA-2 nonresponsiveness to several human T cell lymphokines and cytokines lead us to the conclusion that this 41,000 m.w. glycoprotein could not be likened to already known T cell lymphokines. Highly purified HILDA turned out to be a potent chemoattractant and activator of, respectively, mouse and human eosinophils. It also displayed burst-promoting activity on human marrow.

Animals↗

Cell kinetics in the fetal mouse thymus: precursor cell input, proliferation, and emigration.

The entry and differentiation of lymphoid precursor cells (LPC) in grafted mouse fetal thymuses and the emigration of explants thymocytes has been followed in a system in which donor and host lymphocytes could be distinguished on the basis of Thy-1 expression. It appears that LPC that invade the fetal mouse thymus between 10 and 13 days rapidly differentiate into Thy-1 positive thymocytes, giving rise to all of the lymphoid populations of both cortical and medullary locations until approximately the end of the first week after birth. Lymphoid precursor cells that enter the fetal thymus after 13 days of fetal life only differentiate into Thy-1 positive lymphocytes 6 or 7 days after birth, when they give rise to a second generation of thymocytes that grows exponentially and completely replaces the first generation in approximately 8 days. All cells leaving the thymus during the first 2 wk of life appear to be derived from the first wave of precursors.

Animals↗

Parameters of interaction of a novel monoclonal antibody (33B3.1) with the human IL2-receptors: interrelationship between 33B3.1, anti-Tac, and IL2 binding sites.

This report describes the molecular parameters of interaction of a new antibody (33B3.1) with the human membrane RIL2 expressed by ConA-activated T lymphocytes or allogeneic T-cell clones established from a rejected kidney allograft: the 33B3.1 immunoprecipitates a membrane protein of 55000 MW. It inhibits IL2-driven proliferation of activated T cells. This inhibition occurred in the nanomolar range when low concentrations of recombinant IL2 (rec-IL2) were used. The (125I)-33B3.1 binds in a specific way to a single class of receptor sites on activated T cells. The rate constants of association and dissociation at 37 degrees C of the labeled 33B3.1 were k*1 = 12 X 10(5) M-1 s-1 and k*-1 = 7 X 10(-4) s-1, respectively, and its equilibrium dissociation constant was KD = 0.65 nM. Maximal binding capacities were fairly variable among T-cell clones, as high as 300,000 sites/cell for some of them. Competition experiments demonstrate that the 33B3.1 and anti-Tac interact with the RIL2 in a competitive manner, suggesting that they recognize closely associated epitopes on the RIL2. However, the 33B3.1 inhibits the binding of (35S)-recombinant IL2 to its high affinity RIL2 in a noncompetitive way. The 33B3.1 seems therefore to interact with an epitope close but distinct from the IL2 binding site. Our data could suggest either that the 33B3.1 is able to convert high affinity RIL2 towards low affinity conformations or that there is more than one IL2 binding site per molecule of high affinity RIL2.

Antibodies, Monoclonal↗