IgA antibodies to beta2-glycoprotein I and atherosclerosis.
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Biomedical subjects
Publications and source records attributed to G M Iverson.
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Five prospective clinical studies in lupus patients have shown that LJP 394 can reduce circulating anti-dsDNA antibody levels without causing generalized immunosuppression. The compound is currently being evaluated in a phase III clinical trial for the prevention of renal flares in patients with high-affinity antibodies to LJP 394 and a history of lupus nephritis. The current study analyzed the affinity of patient IgG for LJP 394 prior to and following 4 months of treatment with LJP 394 to determine if pretreatment affinity influenced pharmacodynamic response. Patient serum samples from a multicenter, double-blind, placebo-controlled trial were evaluated prior to and following 4 months of weekly, biweekly or monthly treatment with placebo (n = 9) or weekly treatment with 10 mg LJP 394 (n = 6) or 50 mg LJP 394 (n = 4). After treatment there was a dose-dependent reduction in affinity in the 10 mg/week and 50 mg/week groups (P < 0.05 and P < 0.01, respectively), whereas the placebo group was unchanged. This study demonstrates that weekly treatment with LJP 394 produces a dose-dependent reduction in titer-weighted average affinity. These results suggest it may be possible to use an affinity assay to define prospectively patients that are most likely to exhibit the desired pharmacodynamic response to LJP 394.
Anticardiolipin (aCL) autoantibodies are associated with thrombosis, recurrent fetal loss, and thrombocytopenia. Only aCL found in autoimmune disease require the participation of the phospholipid binding plasma protein beta2 glycoprotein I (beta2GPI) for antibody binding and now are called anti-beta2GPI. The antigenic specificity of aCL affinity purified from 11 patients with high titers was evaluated in an effort to better understand the pathophysiology associated with aCL. Seven different recombinant domain-deleted mutants of human beta2GPI, and full length human beta2GPI (wild-type), were used in competition assays to inhibit the autoantibodies from binding to immobilized wild-type beta2GPI. Only those domain-deleted mutants that contained domain 1 inhibited the binding to immobilized wild-type beta2GPI from all of the patients. The domain-deleted mutants that contained domain 1 inhibited all aCL in a similar but not identical pattern, suggesting that these aCL recognize a similar, but distinguishable, epitope(s) present on domain 1.
Antiphospholipid syndrome is characterized by a prothrombotic state and the presence of beta2-glycoprotein I (beta2-GPI)-dependent antiphospholipid antibodies. The feasibility of a B cell tolerance-based approach for specific reduction of anti-beta2-GPI antibodies was investigated. Anti-beta2-GPI antibodies isolated from a patient with antiphospholipid syndrome were used to screen peptide libraries expressed in phage, resulting in the identification of a phage that specifically bound anti-beta2-GPI antibodies. The phage-displayed peptide was identified and chemically optimized to generate a synthetic 14-mer peptide with an internal thioether linkage (LJP 685) that retained the binding profile of the original phage. LJP 685 was conjugated to a defined, non-immunogenic organic platform to generate a tetravalent presentation of LJP 685 for use as a toleragen. Tetravalent LJP 685 induced a dose-dependent reduction in antibody levels in mice previously immunized and boosted with LJP 685 coupled to the carrier keyhole limpet hemocyanin. These experiments support the technical feasibility of a tolerance-based approach for reducing anti-beta2-GPI antibodies in vivo.
The use of single signal anergy to inactive pathological B cells in an antigen-specific manner is discussed. Cross-linking surface immunoglobulin, with a construct which contains oligovalent B cell epitopes on a non-immunogenic molecular framework can be used to inactivate the target B cells if the construct lacks T cells epitopes. An example of such a B cell toleragen is LJP 394, which inactivates anti-dsDNA-specific B cells in vivo in murine immunized and spontaneous disease models. The drug enhances survival and lowers renal pathology in BXSB mice. Appropriate definition of epitopes of pathological (auto) antibodies thus offers an opportunity for pharmacological intervention.
A discrete tetravalent conjugate, 7a (LJP 394), consisting of four oligonucleotides attached to a common carrier or platform was prepared. Single-stranded oligonucleotide 20-mers consisting of alternating deoxycytidine-deoxyadenosine nucleotides, (CA)10, were attached to a tetrabromoacetylated platform by displacement with sulfhydryl-terminated linkers. The tetrabromoacetylated platform 3a was synthesized in three steps using triethylene glycol bis-(chloroformate). The single-stranded conjugate was characterized by polyacrylamide gel electrophoresis, DNA sequencing, phosphate analysis, carbon and nitrogen combustion analysis, and correlation of stoichiometry to conversion in the conjugation process. HPLC and capillary electrophoretic methods were developed to evaluate purity. The tetrakis, single-stranded conjugate was annealed with a stoichiometric amount of a complementary single-stranded oligonucleotide 20-mer consisting of alternating thymidine-deoxyguanosine nucleotides, (TG)10. The double-stranded conjugate LJP 394 was characterized by melt temperature and hyperchromicity, phosphate analysis, and carbon and nitrogen combustion analysis. LJP 394 inhibits binding of DNA to anti-double-stranded oligonucleotide antibodies and reduces anti-oligonucleotide-specific plaque (antibody)-forming cells in an immunized mouse model by a proposed mechanism involving cross-linking B cell surface immunoglobins.
Picryl chloride factor (PC1-F) is an antigen (TNP hapten)-binding T cell factor that initiates PC1 contact sensitivity (CS). PC1-F initiates PC1 CS by mediating an early 2-h skin swelling reaction that is due to local release of the vasoactive amine serotonin (5-HT) by mast cells, and perhaps other 5-HT-containing cells. Experiments were conducted to determine if PC1-F could sensitize normal mast cells in vitro for subsequent release of 3H-5-HT that had been taken up previously. It was found that PC1-F could sensitize mast cells, inasmuch as incubation with PC1-F, followed by washing, resulted in the ability to release 5-HT by challenge with Ag (TNP-bovine serum albumin), or by an anti-factor mAb called 14-30. As with release induced by anti-TNP IgE mAb PC1-F-induced release required phosphatidyl serine. Mast cell sensitization and activation for 5-HT release by PC1-F was not due to contamination of PC1-F with IgE antibody, because IgE (and not PC1-F) was sensitive to reduction and alkylation. Also, affinity columns linked with 14-30 or anti-IgE showed that the mast cell sensitizing and activating property of PC1-F was clearly separate from that of IgE. PC1-F-induced release was not IgE dependent, because mast cells that were acid-stripped and largely depleted of surface IgE, could then be sensitized by PC1-F. In vivo experiments demonstrated that local challenge with 14-30 antibody induced a 2-h ear swelling reaction in actively contact sensitized mice, or adoptive recipients of sensitized cells, and in normal mice that received PC1-F i.v. These findings suggest that in vitro sensitization of mast cells with PC1-F, and subsequent in vitro release of 5-HT induced by challenge with 14-30 antibodies, correlates with the initiation of PC1 CS in vivo. Therefore, in the initiation of CS by PC1-F, mast cells can be one source of 5-HT, to cause the early, vasoactive phase of CS.
We have used a monoclonal antibody (mAb)-specific for murine T suppressor (Ts) cells (mAb 14-12) to study the role of T cells in tolerance and immunoregulation. We demonstrate that mAb 14-12 can block in vivo Ts cell activity in a variety of experimental systems. It prevents the induction of Ts cells induced by i.v. injection of the water-soluble hapten 2,4,6-trinitrobenzene sulfonic acid, and the protein antigen bovine serum albumin. When 14-12 mAb is given prior to the i.v. injection of trinitrophenyl-conjugated spleen cells (TNP-SC) it blocks the induction of Ts cells and sufficiently overcomes suppression so that TNP-SC is able to induce immunity. mAb 14-12 can convert nonresponder mice into responders for the Ir gene-controlled response to the random terpolymer L-glutamic acid60-L-alanine30-L-tyrosine 10 (GAT), and can substitute for cyclophosphamide in overcoming a suppressor barrier in the adoptive transfer of contact sensitivity. Administration of 14-12 mAb just prior to immunization results in the augmentation of contact sensitivity, antibody and plaque-forming cell responses. These results demonstrate the versatility of this reagent for the study of Ts cell activity.
Two forms of hapten-specific unresponsiveness have been demonstrated following intravenous (iv) injection of hapten-conjugated syngeneic spleen cell based on the nature of the antigen-presenting cell (APC): I-J+, I-A- APC have been shown to induce T-suppressor cells (Ts cells) which are demonstrated upon adoptive transfer, while I-J-, I-A+ APC induce a nontransferable tolerance. In this paper we report that a monoclonal antibody specific for T-suppressor effector cells and factors (14-12) can block the Ts cells induced by I-J+, I-A- APCs and the tolerance induced by I-J-, I-A+ APCs. In addition, it sufficiently overcomes suppression such that injection of TNP-spl iv induces immunity rather than suppression. We show that the I-A+, I-J- TNP-spl, which induce nontransferable tolerance upon iv injection, are the cells which induce immunity in 14-12-treated recipients. These results demonstrate that injection of I-J-, I-A+ APC does not lead to clonal deletion and the tolerance induced by the iv injection of both I-J+, I-A- and I-J-, I-A+ APC operate via Ts cells.
Picryl (trinitrophenyl) chloride (PCL) contact sensitization of mice induces T cells that release an antigen-binding T cell factor (PCLF) that plays an important role in the initiation of contact sensitivity responses, in part via activation of mast cells. The current study employs an in vitro indirect rosette assay to demonstrate that PCLF can interact with the mast cell surface. Sheep red blood cells (SRBC) were hapten conjugated with trinitrophenyl (TNP), dinitrophenyl (DNP), or oxazolone (OX). When TNP-conjugated SRBC were coated with PCLF, monoclonal anti-DNP IgE, or anti-DNP IgG1, they produced 40 to 50% rosettes with purified normal mouse peritoneal mast cells. Analogous antigen-binding factors, from lymphoid cells of OX and dinitrofluorobenzene contact-sensitized mice, gave similar mast cell rosetting levels with OX-SRBC and DNP-SRBC, respectively. PCLF demonstrated a high degree of hapten specificity in that it formed rosettes with TNP-SRBC but not with DNP-SRBC, unlike IgE and IgG1, or DNPF, which formed rosettes with either SRBC type. Similarly, soluble TNP-BSA could inhibit PCLF rosette-forming capacity, but soluble DNP-BSA could not. In addition to mouse mast cells, PCLF formed rosettes with rat basophil leukemia cells, mouse peritoneal exudate macrophages, mouse alveolar macrophages, and J 774 cultured mouse macrophages; it did not form rosettes with rat mast cells, rat alveolar macrophages, or mouse spleen cells. Thus, PCLF-formed rosettes were antigen specific, relatively species specific, and mast cell/macrophage specific. PCLF-mediated rosette-forming activity could be detected in the presence of nanogram quantities of PCLF. More than 10 times greater IgE was needed to produce IgE-mediated rosettes. Reduction and alkylation eliminated the rosetting activity of IgE, but the rosetting activity of PCLF was not affected. PCLF, but not IgE rosette-forming activity, could be removed by and eluted from affinity columns linked with a monoclonal antibody specific for T cell-derived antigen-binding factors, whereas PCLF rosetting activity was not retained by an anti-immunoglobulin affinity column. Preincubation of mast cells with rat myeloma IgE or mouse monoclonal IgE of various specificities blocked IgE rosettes but not PCLF-induced rosettes. Other immunoglobulin isotypes likewise did not block PCLF rosettes. However, PCLF rosettes could be blocked by preincubation of mast cells with OX factor (OXF),and OXF-mediated rosettes could be blocked similarly by PCLF. These results suggest that the antigen-binding T cell factor PCLF interacts with a unique receptor on the surface of mouse mast cells.
We have used a rat monoclonal antibody (mAb) (called 14-30) to affinity purify the antigen-binding chain of a suppressor inducer factor (TsiF-AB) from the serum of mice hyperimmune to heterologous erythrocytes. The TsiF-AB requires the addition of a second, antigen-nonspecific component for biologic activity as well as Lyt-2+ T cells in the assay culture. This mAb can be used to affinity purify suppressor inducer factor from a well-characterized TsiF but not suppressor effector factor (TseF) from culture supernatants. Binding of mAb 14-30 to TsiF is independent of the antigen specificity of the suppressor factor and of the strain of origin of the TsiF. The TsiF affinity purified from hyperimmune serum has an apparent m.w. of 68,000 by SDS-PAGE analysis. 2D gel analysis shows that the serum-derived TsiF has charge heterogeneity, all in the acid range.
This report describes an activity in serum from mice that were contact-sensitized with picryl chloride (PCl) 1 to 4 days earlier. Immune serum, when given i.v., transfers the ability to elicit an immediate hypersensitivity-like ear swelling reaction in naive recipients following local challenge with PCl. This serum activity is due to an antigen-binding T cell factor that shares some properties with IgE antibody. The activity is antigen specific, and due to an antigen-binding moiety that is heat labile (56 degrees C, 4 h). However, unlike IgE antibody the serum activity is resistant to reduction and alkylation, and is retained by columns of Sepharose beads coupled with polyclonal or monoclonal antibodies that react with antigen-specific T cell factors from other systems. These columns did not retain IgE antibody activity in our experiments. Importantly, the serum activity was not retained by columns linked with antibodies directed to mouse immunoglobulins, which do retain IgE activity. We conclude from these data that the activity in PCl immune serum is not caused by IgE antibody, and is due to the presence of the previously described antigen-specific T cell factor (PCl-factor), that can activate serotonin-containing cells, such as mast cells, to release the vasoactive amine serotonin. PCl-factor transfers the ability to elicit an immediate hypersensitivity-like reaction that is an early component of delayed-type hypersensitivity. The presence of this T cell factor in the serum of actively sensitized mice provides a means to sensitize tissues throughout the body for this required, initial, serotonin-dependent component of delayed-type hypersensitivity reactions.
T-cell antigen binding molecules (TABM) specific for trinitrophenol (TNP), oxazalone, azobenzenearsonate or sheep erythrocytes were purified by affinity to antigen, adsorption to monoclonal antibodies to antigen binding molecules or were synthesized by translation of immunopurified mRNA for TABM in vitro. These molecules and a T-cell line, BW5147, membrane protein bound by rabbit antibodies to TABM were radiolabeled by 125I, digested with Staphylococcus V8 protease, and peptides of the proteolytic digest were resolved by 2D-gel peptide mapping. Comparison of the peptide maps of these proteins and amino acid analysis of T-cell antigen binding molecules specific for TNP or sheep erythrocytes indicate similarities and distinctions suggesting variable and constant domains in these molecules.
An immunoglobulin negative material from the eluate of an anti-idiotype immunosorbent column [1] exhibited potent immunosuppressive activity. This material also inhibited the translation of globin mRNA in a cell-free reticulocyte lysate system. The translation inhibitory activity of this material was not attributable to nucleases which were separable by a blue-dextran agarose column. Further correlation between immunosuppressive activity and translation inhibitory activity was observed when GTP or GTP analogue was included in experimental systems. These results suggest that the immunosuppressive factor (or factors) may contain a translation inhibitory factor. The biochemical mechanism of immunosuppression is discussed.
We have developed a monoclonal antibody to a T cell-derived suppressor factor (TsF) found in the serum of C57BL/6 mice hyperimmune to sheep red blood cells (SRBC). The antibody binds to the SRBC-specific TsF as well as to a TsF (TNP-TsF) from another system differing in both antigen specificity and MHC. It does not bind to unrelated proteins. The antibody inhibits the activity of the SRBC-specific TsF in vitro. By using the monoclonal anti-TsF, we can isolate sufficient quantities of TsF to demonstrate that it fulfills several properties that have been attributed to TsF, namely, MHC restriction, antigen specificity, and the requirement for a second chain. Also, the purified TsF gives a single 68,000 dalton band upon SDS-PAGE gel analysis under reducing conditions. We conclude, therefore, that we have a method of the isolation of pure TsF, as well as a probe for the genetic, biochemical, and biologic analysis of TsF.
The tolerogenic signal produced by the i.v. injection of haptenated peritoneal exudate cells can be converted to an immunogenic signal by treating the cells with antibody to the hapten before administration. We examined this phenomenon and found that immunity induced by antigen-antibody complexes, as opposed to skin sensitization, is resistant to suppressor T cell influences. This resistance to suppression is due to the activation of an I-J+, Ly-1 T cell population which adheres to the Vicia villosa lectin, all characteristics of contrasuppressor T cells. Because haptenated cells can induce immunity if injected subcutaneously or into cyclophosphamide-pretreated recipients (thereby avoiding the induction of suppressor cells), we suggest that the activation of contrasuppressor cells by antigen-antibody complexes overrides suppressive influences in the host, allowing immunity to become dominant. The possible roles of suppression and contrasuppression in channeling the effector arm of the immune response (e.g., contact sensitivity vs humoral immunity) are discussed.
Heterologous antisera to murine or rat T-cell antigen-binding molecules (T-ABM) were raised in rabbits or sheep. The T-ABM used for immunization were purified by affinity for antigen and did not bear known immunoglobulin isotypes. T-ABM and anti-T-ABM were raised in three separate laboratories. Antisera to T-ABM were exchanged and tested for binding to T-ABM in three separate laboratories. Thus antisera to at least three distinct T-ABM were tested directly for binding to T-ABM or by adsorption of biological activity. Rabbit antisera to murine trinitrophenol (TNP)-specific T-ABM or rat AgB-specific T-ABM bound both murine or rat T-ABM, indicating evolutionary conservation of T-ABM. Similar results were found with sheep antisera to murine T-ABM. In addition, all heterologous anti-T-ABM antisera used bound murine T-ABM specific for TNP, 4-hydroxy-3-nitrophenyl acetate (NP), SRBC, or T-cell membrane proteins with similar structure. Thus, there is a commonality of antigenic determinants between various T-ABM and T-cell membrane homologues which may be T-cell surface receptors for foreign antigen.
We immunized four different sheep with antigen-binding material found in the serum of BALB/c mice 4 days after primary immunization with sheep erythrocytes (SRBC). The resultant antibodies made by the sheep contained a specificity(ies) that appeared to react with a dominant idiotype present on SRBC-specific Lyt-2+ T cells. The antiserum made by the sheep markedly inhibited the formation of antigen-specific rosettes by SRBC educated T cells but did not inhibit T cells educated to other heterologous erythrocytes from forming crossreacting rosettes with SRBC or specific rosettes with the homologous erythrocytes. The "anti-Id serum" was depleted of all activity against known immunoglobulin isotypes and light chains and then was used to isolate antigen-binding molecules from mice that were hyperimmunized with SRBC. The ShId+ material so isolated could be divided into two main groups--one that expressed immunoglobulin determinants, and one that did not. The former represented 15-25% of the ShId+ protein isolated and comprised a minority of the anti-SRBC antibody in the anti-SRBC serum; the latter group of proteins bound sheep glycophorin specifically and expressed constant region determinants found on a number of other antigen-specific T cell factors. These experiments suggest that antigen-binding molecules made by T cells display much less heterogeneity than do antibodies and also show that the serum of hyperimmune mice contains significant amounts of T cell-derived antigen-specific immunoregulatory molecules.