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J H Colle

Publications and source records attributed to J H Colle.

30 records · Page 2Linked to original sources

Hybrid polypeptide heavy chains produced by two hybridoma lines.

Two anti-TNP antibodies exhibiting unusual features are described. They were obtained in two independent fusions. Spleen cells from CB20 mice sensitized with TNP-Ficoll and challenged with TNP-LPS were fused with SP2/0 myeloma cells. One of these hybridomas, CBT3, secretes antibodies which react with both monospecific anti-gamma 2b and anti-gamma 3 anti-isotypic sera; the second hybridoma, CBT4, secretes antibodies reacting with monospecific anti-mu and anti-gamma 2b sera. Only one type of immunoglobulin is secreted by each hybridoma, ruling out the hypothesis of hybrid molecules formed by distinct heavy chains. These results imply that the two heavy chains are made up from elements encoded by gamma 3 and gamma 2b genes in CBT3 and by gamma 2b and mu genes in CBT4. The molecular mechanisms underlying the production of these singular heavy chains are discussed.

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Study on B-memory generation by Tnp-Ficoll: induction but not expression is observed among various inbred mouse strains.

The primary and secondary responses to Tnp-Ficoll, a class 2 thymus-independent antigen, were assessed in various inbred strains of mice. The eventual implication of H-2 or IgH linked genes was searched for. Contrasting with our previous reports using Tnp-LPS, a class 1 thymus-independent antigen, no homologous memory-type response to Tnp-Ficoll and consequently no genetic control was observed. However Tnp-specific B-memory lymphocytes were induced in most strains since a heterologous challenge with Tnp-LPS evoked a typical memory type response characterized by an increased number of antibody-secreting cells and/or significant amount of anti-Tnp antibodies of the IgG isotype. The lack of memory revelation by Tnp-Ficoll is discussed in terms of a possible humoral or cellular regulation and of B-memory cell generation and maturation.

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Igh-V or closely linked gene(s) control immunological memory to a thymus-independent antigen.

Mice mount a normal primary antibody response on stimulation with the thymic-independent antigen trinitrophenylated lipopolysaccharide (TNP-LPS). Although we have previously reported the generation of functional B-memory lymphocytes to TNP-LPS, this memory response was only observed in few mouse strains. Here we have used congeneic mouse strains in an attempt to locate the genetic regions involved in the memory response. We show that genes of the major histocompatibility complex (MHC) do not have a critical role but that genes coding for the variable region of immunoglobulin heavy chains or gene(s) closely linked to them are required for memory cell induction by TNP-LPS.

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Effect of cyclosporin A on the induction and activation of B memory cells by thymus-independent antigens in mice.

The effect of cyclosporin A on the induction and activation of B memory cells by thymus-independent (TI) antigens was investigated. Studies were carried out in C57BL/6 mice, a strain in which TI.1 trinitrophenyl-lipopolysaccharide (TNP-LPS) and TI.2 dinitrophenyl-(DNP)-Ficoll antigens can elicit a secondary response. Evidence is presented that cyclosporin A does not adversely affect the primary or secondary response to TNP-LPS. In contrast, this fungal metabolite prevents the triggering of virgin B lymphocytes and TNP-LPS-induced memory cells by DNP-Ficoll. Cyclosporin A does not interfere with the generation of hapten-specific B memory cells by TNP-LPS or DNP-Ficoll. These findings are discussed in terms of B cell lineages leading to antibody-forming cell precursors and memory cells.

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Generation of immune memory by haptenated derivatives of thymus-independent antigens in C57BL/6 mice. I. The differentiation of memory B lymphocytes into antibody-secreting cells depends on the nature of the thymus-independent carrier used for memory induction and/or revelation.

It has been previously reported that trinitrophenylated lipopolysaccharide (TNP-LPS), a thymus-independent (TI)-1 antigen, elicits an anamnestic response to TNP in C57BL/6 mice. The ability of these mice to mount a secondary response to TI-2 antigens was analyzed. Priming with DNP-Ficoll or DNP-Dextran, both TI-2 antigens, resulted in an increased frequency of TNP-binding B lymphocytes. Evidence is presented that memory cell-induction by DNP-Ficoll does not require functional T cells. The differentiation into antibody-forming cells (AFC) of memory cells generated by DNP-Dextran or DNP-Ficoll cannot be obtained by a challenge with either antigen. There was no indication that the lack of a secondary response to TI-2 antigens was related to suppressive T cells interfering with memory expression. Memory cells induced by DNP-Dextran or DNP-Ficoll can nevertheless be activated by TNP-LPS. In contrast to the restricted sensitivity of TNP-memory cells generated by TI-2 antigens, TNP-LPS-induced memory cells are indifferently susceptible to TI-1 or TI-2 antigenic stimulation. These results are discussed in terms of memory B-cell subpopulations.

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Lack of general immunosuppression during visceral Leishmania tropica infection in BALB/c mice: augmented antibody response to thymus-independent antigens and polyclonal activation.

Leishmania tropica causes a lethal visceral disease in highly susceptible BALB/c mice, with many immunopathologic features resembling those in human kala-azar. The responses to thymus-independent antigens of Type 1 and 2 (TI-1, TI-2) were compared in infected mice of susceptible BALB/c and resistant C57BL/6 strains at various times after infection. The infected BALB/c mice had an augmented response to both types of antigens at 45 days after infection. Later (day 76), the response to trinitrophenylated lipopolysaccharide (TNP-LPS, a TI-1 antigen) was diminished but that to dinitrophenylated Ficoll (DNP-Ficoll, a TI-2 antigen) remained statistically above the response of uninfected mice. The response of the resistant strain to either antigen was not modified as a result of the infection. Both strains showed significant polyclonal activation, which was considerably greater in the BALB/c than in the C57BL/6 mice. The observations presented here are in contrast to the widely held belief that a generalized nonspecific immunosuppression occurs in L. tropica infected BALB/c mice.

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The antigen-specific cell-mediated immune response in mice is suppressed by infection with pathogenic lyssaviruses.

Responsiveness of T cells (RTC) was studied in BALB/c mice intramuscularly infected with various lyssaviruses. After infection by this peripheral route, two types of viruses could be classified according to their effects: 1) pathogenic viruses, including fixed rabies Pasteur virus (serogenotype 1) and wild viruses belonging to serogenotype 1 (from a rabid fox in France and from a cow infected by a vampire bat in Brazil) or to serogenotype 5 (European bat lyssavirus 1); and 2) non-pathogenic viruses, including Mokola virus (serogenotype 3). RTC was tested by analysing in vitro the capacity of splenic T cells from infected BALB/c mice to produce cytokines after antigenic (purified lyssavirus antigens) or polyclonal stimulation (concanavalin A). Cytokine production was followed by assaying the biological activity of interleukin-2 and by testing for interleukin-2, interleukin-4 and interferon-gamma (IL2, IL4 and IFN gamma ) messenger RNAs (mRNA) by transcription into complementary DNA and amplification by the polymerase chain reaction. The initial biologically active IL2 and cytokine mRNA production was observed in mice infected with pathogenic or non-pathogenic lyssaviruses. Only mice with symptoms (infected with pathogenic viruses) lost the capacity to produce cytokines in vitro after antigen-specific stimulation. No such loss was observed after polyclonal stimulation. In mice peripherally infected with non-pathogenic viruses, no loss was observed after stimulation with lyssavirus antigens. Thus, infection with pathogenic lyssaviruses by the peripheral route induces in BALB/c mice a loss of T-cell responsiveness after antigen activation, but not after polyclonal activation.

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A new approach to immunological memory using thymus-independent antigens.

Contrary to what has been reported of thymus-independent antigens, we recently demonstrated that trinitrophenylated lipopolysaccharide (TNP-LPS), a class 1 thymus-independent antigen, elicited an anti-TNP anamnestic response in C57BL/6 mice. The question of whether or not class 2 thymus-independent antigens (DNP-Ficoll and DNP-dextran) could also induce immunological memory in this mouse strain was examined. Evidence induce immunological memory in this mouse strain was examined. Evidence is presented that priming with either of these class 2 thymus-independent antigens resulted in the induction of memory B lymphocytes. However, while the memory cells generated by these two antigens were able to be activated by TNP-LPS, they were not triggered by class 2 thymus-independent antigens. Genetic analysis of the capacity of different mouse strains to mount a secondary response to TNP-LPS revealed that major histo-compatibility-associated genes did not play an essential role, but that IgH-V or closely linked gene(s) controlled the immunological memory to TNP-LPS. These findings are discussed in terms of regulatory phenomena which govern the expression of memory response to thymus-independent antigens.

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Effects of hydroxyurea in vivo treatment on the antibody response in mice.

In the present work, we investigate the effects of hydroxyurea (HU) treatment given before antigen priming on the antibody response in the mouse. We have studied the response to both thymus-independent and thymus-dependent antigens. With both types of antigens, we have found a two- to ten-fold increase in the number of antigen-specific IgM PFC in the spleens of HU-treated primed mice. In the case of the T-dependent antigens, a simultaneous decrease in the IgG PFC response was also observed in HU-treated mice. These results suggest that major changes in the dynamic equilibrium of the cells of the immune system, induced by HU treatment, may result in different homeostatic regulation, as revealed by the modified pattern of response to exogenous antigens.

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