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V Colizzi

Publications and source records attributed to V Colizzi.

At least 127 records · Page 7Linked to original sources

Dissociation between interleukin-1 and interleukin-2 production in proliferative response to microbial antigens: restorative effect of exogenous interleukin-2.

The relationship between the production of interleukin-1 (IL-1) and interleukin-2 (IL-2) after stimulation of human mononuclear cells within an antigenic extract from Candida albicans was analyzed in both responder and nonresponder donors. Culture supernatants from responders contained both IL-1 and IL-2 activity, whereas the supernatants from nonresponders contained only IL-1 and no appreciable IL-2. However, the addition of exogenous IL-2 to nonresponder cultures restored the normal proliferative response. Similar observations were made when cells from mice infected intravenously with high doses of Mycobacterium bovis BCG were cultured; these cells showed a marked impairment of the proliferative response to purified protein derivative. Spleen cells from BCG-induced unresponsive mice failed to produce IL-2 despite the fact that normal IL-1 activity was present in the culture. Again, the addition of exogenous IL-2 fully reversed the proliferative unresponsiveness. Thus, the presence of IL-1 does not necessarily induce production of IL-2, and the proliferative unresponsiveness is therefore due to a primary lack of IL-2.

Animals↗

Two-chain disulphide-bonded structure of antigen-specific T-helper factor: both chains are necessary for activity and their interaction is I-A restricted.

The molecular structure of the antigen-specific T-helper factor (ThF) which augments contact sensitivity in mice was studied. ThF was split into two types of polypeptide chain by mild reduction and alkylation; one antigen binding (which determined the specificity), the other non-antigen binding. The two chains were, by themselves, inactive but complemented each other and reconstituted biological activity. In addition, a genetic restriction was observed in the complementation of the two chains which mapped to the I-A subregion of the H-2 complex.

Animals↗

Synthetic peptides in the analysis of the induction and regulation of delayed-type hypersensitivity to lysozyme.

T cells mediating hen egg lysozyme (HEL)-specific delayed hypersensitivity can be activated by synthetic peptides of the 1-18 amino acid residues of hen egg lysozyme. The N-terminal 1-18 peptides of hen egg (PHEL) and ring-necked pheasant lysozyme (PREL) are highly cross-reactive in the induction of T cells mediating delayed hypersensitivity. The N-terminal 1-18 peptides of hen egg and ring-necked pheasant lysozyme (PHEL and PREL) are not cross-reactive in the induction of suppressor T cells, demonstrating that phenylalanine at amino acid residue 3 is critical for the formation of an epitope recognized by T suppressor cells.

Amino Acid Sequence↗

The control of the contact sensitivity skin reaction: T-suppressor afferent cell blocks the production of antigen-specific T-helper factor.

Lymph node cells from mice painted with the contact sensitizers picryl chloride or oxazolone produce antigen-specific T-helper factor. This is detected by its ability to increase the contact sensitivity response to the injection of small numbers of haptenized spleen cells into the footpads of naive recipients. The production of this T-helper factor is inhibited by the injection of spleen cells from mice given water-soluble, chemically reactive hapten such as picrylsulphonic (trinitrobenzenesulphonic) acid--an agent which induces unresponsiveness. The cells which inhibit the production of T-helper factor are antigen-specific T-suppressor cells. They are sensitive to cyclophosphamide given before the injection of picrylsulphonic acid, but are unaffected by adult thymectomy. In this respect, they resemble the family of Ts-aff which inhibit the development of contact sensitivity, specific antigen-induced lymph node proliferation and the specific IgG response, and differ from the T-suppressor efferent cell (Ts-eff) which acts at the expression stage of the contact sensitivity reaction. These results are fully compatible with the view that the Ts-aff inhibits the development of contact sensitivity by blocking the production of antigen-specific T-helper factor.

Animals↗

In vivo activity of interleukin-2: conversion of a stimulus causing unresponsiveness to a stimulus causing contact hypersensitivity by the injection of interleukin-2.

The intravenous injection of hapten-modified (picrylated) cells causes unresponsiveness. When conventional or recombinant interleukin-2 (IL-2) is also injected, strong contact sensitivity occurs. This IL-2 is effective when given 7 hr after the injection of the picrylated cells or 2 days later, but has no effect when given beforehand. It is suggested that picrylated cells given intravenously fail to induce contact sensitivity secondary to a failure of IL-2 production, and that IL-2 may be one of the second signals which converts a 'tolerogenic' stimulus into an immunogenic stimulus.

Animals↗

A non-specific inhibitor produced by Candida albicans activated T cells impairs cell proliferation by inhibiting interleukin-1 production.

Human T lymphocytes cultured in vitro for 5 days with Candida albicans purified polysaccharide (MPPS) produce and antigen non-specific inhibitor (nsINH) which blocks cell proliferation when added at the beginning of the culture. The antigen presenting function of antigen pulsed adherent cells (macrophages) is significantly impaired by incubation in nsINH. Further analysis shows that nsINH blocks the production of interleukin-1 both from human mononuclear cells stimulated with lipopolysaccharide. Furthermore, the production of interleukin-2 (IL-2) is also suppressed when MPPS stimulated cells are cultured in presence of nsINH. However nsINH does not affect the appearance of IL-2 responsive cells as the addition of gibbon IL-2 to the culture fully reverses the suppressive effect of nsINH on blast transformation.

Antigens, Fungal↗

Monocyte subsets in the production of inhibitory factor by Candida albicans-activated human T cells.

Macrophages are essential for the proliferative response of human T lymphocytes to a purified polysaccharide extract from Candida albicans (MPPS). The role of macrophages as antigen-presenting cells in the production of an antigen non-specific inhibitory factor (nsINH) by MPPS-activated T cells was also investigated. Fc receptor positive (FcR+) or negative (FcR-) plastic-adherent mononuclear cells were used as MPPS-presenting cells, and the results show that the FcR- subset is mainly responsible for the release of nsINH from activated T cells.

Antigen-Presenting Cells↗

Immunoregulation of lysozyme-specific suppression. I. Induction and suppression of delayed-type hypersensitivity to hen egg-white lysozyme.

Subcutaneous immunization with hen egg-white lysozyme (HEL) in complete Freund's adjuvant induces, both in antibody responder and nonresponder mice, a classical delayed-type hypersensitivity (DTH) reaction evaluated as footpad swelling. This response can be specifically transferred to naive recipients by Lyt-1+2- T cells and passive transfer is restricted by genes mapping in or to the left of the I-A region of the H-2 complex. Fine antigenic specificity analysis shows that HEL-primed T cells mediating DTH recognize ring-necked pheasant egg-white lysozyme, a lysozyme closely related to HEL, but fail to respond to human lysozyme, differing from HEL at 40% amino acid residues. Complete cross-reactivity between native and denaturated (reduced and carboxymethylated) HEL is exhibited by T cells involved in the DTH response. Subcutaneous injection of HEL coupled to spleen cells is also able to induce antigen-specific and genetically restricted DTH responses whereas the same cells administered by i.v. or i.p. route induce predominantly suppressor T cell activation. These suppressor T cells specifically inhibit the induction phase of DTH reactivity to HEL.

Animals↗

Immunoregulation of lysozyme-specific suppression. II. Hen egg-white lysozyme-specific monoclonal suppressor T cell factor suppresses the afferent phase of delayed-type hypersensitivity and induces second-order suppressor T cells.

Culture supernatant from a monoclonal T cell lymphoma line (LH8-105) obtained by radiation leukemia virus-induced transformation of hen egg-white lysozyme (HEL)-specific suppressor T lymphocytes is able, when injected into mice, to specifically suppress the delayed-type hypersensitivity (DTH) reaction induced by HEL. The suppressor T cell factor (TsF) exhibits fine antigenic specificity since it suppresses the DTH response induced by HEL without affecting the DTH response induced by ring-necked pheasant egg-white lysozyme (REL), a lysozyme closely related to HEL. Conversely, LH8-105 TsF is able to suppress the DTH response induced by human lysozyme, distantly related to HEL but sharing a common epitope critical for induction of suppressive activity. The fine antigenic specificity of LH8-105 TsF for a restricted epitope on the HEL molecule is confirmed by binding to HEL but not to REL immunosorbents. This TsF also bears I-J determinants, as demonstrated by binding to monoclonal anti-I-J immunosorbents, and it suppresses the afferent but not the efferent phase of the DTH response to HEL. The afferent suppression is controlled by genes apparently mapping in the I-J subregion of the H-2 complex since I-J-incompatible mice are not suppressed by LH8-105 TsF injection. This inducer-type TsF induces second-order effector suppressor T cells only in HEL-primed mice indicating the primary role of antigen, in association with H-2 (I-J) products, in the afferent portion of this suppressive circuit.

Animals↗

T suppressor factor activity is due to two separate molecules. The Lyt-1(-)2+I-J+ cells of mice primed with antigen make an antigen binding molecule which is only active when complemented by cofactor made by Lyt-1+2(-)I-J+ cells.

Mice primed with picrylsulfonic acid (PSA) and then painted on the skin with picryl chloride produce antigen-specific T suppressor factor (TsF). In contrast unpainted primed mice fail to produce active TsF. This is not due to the absence of the antigen binding part of TsF but to the absence of a cofactor. This cofactor is (a) antigen nonspecific and occurs in potassium chloride extract of normal spleen cells. It also occurs in the 24 hr supernatant of normal cells modified by haptenisation with picryl or the unrelated NP antigen (4-hydroxy-3-nitrophenylacetyl), and in preparations of conventional TsF (PSA/PCl) from painted PSA-primed mice; (b) bears I-J determinants; and (c) is produced by Lyt-1+2(-)I-J+ cells. The antigen binding molecule occurs alone in the supernatant of PSA-primed mice. It lacks I-J determinants and has a molecular weight around 35,000 and 75,000. It is produced by Lyt-1(-)2+I-J+ cells and is only active when complemented by cofactor. However, the complementation is genetically restricted and the restriction maps to the I-J subregion of the MHC.

Animals↗

Nonspecific inhibitor of contact sensitivity made by T-acceptor cells: triggering of T cells armed with antigen-specific T-suppressor factor (TsF) requires both occupancy of the major histocompatibility complex recognition site by soluble I-J product and cross-linking of the antigen recognition sites of the TsF.

The phenomenon of associative recognition, i.e., the recognition of antigen together with major histocompatibility complex products (MHC) was studied in a model system. T-acceptor cells armed with antigen-specific T-suppressor factor (TsF) released a nonspecific inhibitor of the transfer of contact sensitivity when exposed to antigen together with MHC. The MHC product occurred in a KCl extract of cells and behaved genetically and serologically as I-J. Cells armed with anti-picryl or anti-"oxazolone" TsF could be triggered by the corresponding "bis-picryl-L-lysine" and "bis-oxazolone-L-lysine" together with MHC. This suggested that cross-linking of antigen recognition sites on separate molecules of TsF might be required. To investigate this possibility the bifunctional "mixed" hapten "N alpha-picryl-N epsilon-oxazolone-L-lysine," which is univalent with respect to the picryl and oxazolone haptenic groups, was synthesized. This triggered cells armed with a mixture of anti-picryl and anti-oxazolone TsF but not cells armed with either TsF alone. It was concluded that both occupancy of the I-J recognition site and the cross-linking of separate molecules of TsF was required for triggering. Moreover the hapten and the KCl extract could be given sequentially and in either order. This finding suggested that the triggering of the release of nonspecific inhibitor was due to the separate recognition of I-J and antigen and not to new antigenic determinants produced by their interaction.

Animals↗

Complement activation by cell-associated immune complexes in contact sensitivity.

Lymph node cells collected 4 days after painting the skin with picryl chloride activate the first components of the classical pathway of complement cascade, as shown by consumption of C4 of rabbit complement with total sparing of C5 and factor B activity. In contrast, lymph node cells collected 1 or 6 days after sensitization fail to do so. The ability of "4-day" cells to activate complement is inhibited by treating the cells with specific low-molecular-weight hapten, which is known to dissociate the immune complex present on the cell surface. When mouse serum was used as source of complement, a different behavior in complement activation between CBA/J and B10.D2-New/SnJ serum was observed: "4-day" cells failed to consume CBA/J serum whereas a normal complement activation was detected when B10.D2-New/SnJ serum was used. Using these two sera which differ in the level of C4, an inverse relationship between the ability of "4-day" cells to activate complement and their capacity to induce contact sensitivity when injected into the footpad of normal recipients was reported. Experiments performed using sera from C5 genetically deficient mice demonstrate that only the early complement components are involved, suggesting that membrane immune complexes are solubilized as a result of complement activation; on the other hand, membrane bound activated complement components could alter the immunizing potential of "4-day" cells.

Animals↗

In vivo and in vitro administration of interleukin 2-containing preparation reverses T-cell unresponsiveness in Mycobacterium bovis BCG-infected mice.

Mice infected with high doses of Mycobacterium bovis BCG (3 X 10(7)) showed a marked impairment of delayed-type hypersensitivity to PPD in vivo, and their splenic T cells failed to proliferate when cultured in vitro with concanavalin A or PPD. However, this state of unresponsiveness could be reversed both in vitro and in vivo by the administration of an interleukin 2 (IL-2)-containing preparation. IL-2 produced spontaneously by the gibbon lymphosarcoma T-cell line MLA-144 and T-cell-conditioned medium from a mixed lymphocyte reaction were able to increase DNA synthesis of splenic T lymphocytes from BCG-immunosuppressed mice cultured with concanavalin A or PPD. Furthermore, BCG-infected mice treated in vivo with at least 100 U of IL-2 showed a positive skin reaction to PPD, and their spleen cells were fully responsive in vitro. The reversal of BCG-induced immunosuppression was not observed when infected mice were injected with IL-2 preparations previously incubated with blast cells, a procedure known to remove IL-2 activity. These results indicate that the basis of BCG-induced unresponsiveness is a deficiency in the production of IL-2 rather than a lack of reactive T cells.

Animals↗

T helper factor in contact sensitivity: antigen-specific I-A+ helper factor is made by an Lyt-1+2-, I-A+, I-J- T cell.

Antigen-specific T helper factor appears in the 24 hr supernatant of lymph node cells taken 4 days after immunization with contact sensitizer. The factor is assayed by its ability to augment the contact sensitivity response induced by haptenized spleen cells. In practice, picrylated or oxazolonated spleen cells are treated with the factor for 1 hr at 4 degrees and 4 x 10(6) cells are injected into the footpads of recipient mice. Contact sensitivity is assessed 5 days later. The factor first appears 3 days after immunization and its production depends on an Lyt-1+2-, I-A+, I-J- T cell. It is antigen-specific in its action in a criss-cross experiment, and can be absorbed with and eluted from haptenized beads. It bears I-A determinant(s) and the I-A determinant and the antigen binding site(s) occur on the same molecule. The molecular weight is around 60,000. The possible role of T helper factors in the activation of the antigen-presenting cell in the induction stage of the immune response is discussed.

Animals↗