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Single cell studies on the antibody-forming potential of fractionated, hapten-specific B lymphocytes.

This study addresses itself to the problem of antibody formation in vitro by mouse splenic B lymphocytes enriched for reactivity to the hapten NIP by the hapten-gelatine binding and melting technique of Haas and Layton (1975). Small numbers of NIP-gelatine-bound B cells were placed in microcultures either by bulk dispensing of dilute cell suspensions, or by micromanipulation under direct microscopic visualization. Antibody formation was induced by the T cell-independent hapten-protein conjugate NIP-polymierized flagellin, using 10(4) thymus cells per microlitre as 'filler' cells. The frequency of precursors of NIP-specific antibody-forming cells among bound cells was about 2-2 X 10(-2) (one cell in forty-five) by both statistical and direct evaluation, after adjustment for a background frequency of 6-10 X 10(-8) precursors in the thymus filler cells. Single clones commenced antibody secretion asynchronously, as shown by the fact that the incidence of positive cultures continued to rise over the whole three days of culture, and that very small clones of one to four plaque-forming cells (PFC) were still found on day 3. The mean PFC number per positive culture rose from 1-2 at day 1 to 4-7 at day 2 and about 20 at day 3.

Animals

Long-term antibody synthesis in vitro- IV. Independent segregation of antibodies directed to different determinants of an antigen molecule in its native configuration.

Independent segregation of antibody populations directed to different portions of E. coli beta-d-galactosidase occurs during the immune response against the enzyme. Anti-enzyme antibodies able to interact and activate a naturally occurring ligand, the mutant-defective enzyme AMEF (Antibody Mediated Enzyme Factor), do not parallel anti-enzyme antibodies which are measured by a coprecipitation assay involving precipitation of the wild-type molecule. Dissociation of the two antibody populations is best achieved in microcultures sustaining long-lasting responses. Similarly, anti-NIP (4-hydroxy-3-iodo-5-nitrophenylacetic acid) antibodies could be elicited without concomitant synthesis of anti-carrier antibodies by short-term challenge in vitro of ovalbumin-NIP-primed lymph nodes with a heterologous conjugate in which the hapten NIP was coupled to a carrier known to be non-immunogenic under the conditions of challenge. The potential applications of these findings are indicated, namely: large-scale production of monospecific antibodies in vitro; and the possibility of studying the regulatory role of antibodies directed towards on portion of the immunogenic molecule on the response to other regions of the same molecule.

Animals

Induction of a stable hapten-specific immunosuppression by a hapten conjugated to poly(N-vinylpyrrolidone) (PVP).

The ability of a hapten coupled to a clinically permissive synthetic polymer (NIP-PVP) to induce suppression was investigated. NIP coupled to the low molecular weight non-immunogenic form of poly(N-vinylpyrrolidone) (PVP) was found to be capable of inducing a hapten-specific longlasting suppression of both primary and secondary responses. The previous use of PVP as a plasma expander in humans makes this polymer a potentially suitable tool for the induction of specific immunosuppression to a variety of clinically important drug and tissue specific epitopes. The possible use of low molecular weight PVP for that purpose will be investigated further, specifically with larger antigenic components.

Animals

Estimation of hapten-specific antibody-forming cell precursors in microcultures.

The immune response of mouse spleen cells to hapten-conjugated polymer of flagellin (DNP-POL, NIP-POL) was studied using a microculture system. When increasing numbers of spleen cells were added to a 'filler' cell system, negative feedback effects became apparent and resulted in the generation of progressively lower numbers of plaque-forming cells (PFC) per input cell. This feedback inhibition was shown to be antigen-specific and mediated by factors released into the culture medium. The effect precludes calculation of the frequency of PFC precursors in cultures containing spleen cells alone and complicates the analysis of tolerance using in vitro assay systems. The addition of small numbers of spleen cells to a constant number of thymocytes provided a system in which Poisson analysis could be used to determine the frequency of PFC precursors capable of being activated by hapten-POL conjugates. This system was used to estimate the frequency of anti-NIP-PFC precursors in CBA spleen cells.

Animals

Receptor-blocking factor present in immune serum resembling auto-anti-idiotype antibody.

Previous studies have shown that rabbit antibody-forming cells in the primary and secondary response possess cell-associated antigen-binding receptors. In the present study, we demonstrate that a factor appears in the serum of rabbits following immunization which inhibits the antigen binding of up to 60% of the receptor-bearing antibody-forming cells in both the primary and secondary response. These observations were made on lymph node cells from rabbits primed with either sheep red blood cells (SRBC)3 or 3-nitro-4-hydroxy-5-iodophenylacetic acid coupled to keyhole limpet hemocyanin (NIP-KLH). The inhibitory activity is not associated with anti-SRBC or anti-NIP antibody. In the primary response to SRBC, the antigen binding by day 6 antibody-forming cells is inhibited by the autologous days 7 to 10 inactivated and absorbed serum. In the secondary response to SRBC, the inhibitory factor peaks in the serum around day 10. Later, in both the primary and secondary immune response to SRBC, the inhibitory activity of the serum decreases rapidly. In the primary response to NIP-KLH, the inhibitory activity of the immune sera increased from day 7 through day 14. The receptor-inhibiting factor is antigen specific since the serum from SRBC-primed rabbits inhibits SRBC binding by anti-SRBC antibody-forming cells, but it does not inhibit NIP binding by anti-NIP antibody-forming cells. Similarly, serum from NIP-KLH-primed rabbits inhibits NIP binding by anti-NIP antibody-forming cells, but does not inhibit the SRBC receptor on the anti-SRBC antibody-forming cells. The inhibition is not due to the presence of antihapten or anti-SRBC antibody competing with receptor sites, since the immune sera from one SRBC-primed animal inhibit antigen binding of its own antibody-forming cells, but do not inhibit the antigen binding of antibody-forming cells from other SRBC-primed rabbits.

Animals

Rosette plaques with lymphoid cells from heterozygous rabbits. Ani-hapten antibody-forming cells displaying either one or both b locus surface allelic markers.

A rosette-plaque model was employed to test for the expression of b locus allelic markers at the surface of lymph node lymphocytes (LNL) from heterozygous (b4,6) rabbits, 5 days after immunization with NIP-diphtheria toxoid. Before immunization, in all animals examined, LNL displaying both b4 and b6 determinants at the surface (range 5-20 per cent) were detected, the remainder consisting of cells exhibiting only one or the other determinant. After immunization, five of the thirteen heterozygotes apparently had gone into allelic exclusion as LNL from these animals showed only b4 or b6 rosettes which secreted anti-NIP antibody in the plaque. The eight remaining rabbits remained in allelic inclusion. Since cytophilic uptake of allotype might have contributed to double expression, LNL from immunized animals were treated with pronase to remove surface immunoglobulin. When the stripped cells were cultured overnight in serum-free medium, reappearance of b4, b6, and b4 plus b6 expressing cells was seen. When pronase-stripped cells were incubated in cycloheximide (20 mug/ml) for 5 hr, no allotype synthesis was found but inhibition was relieved when the cells were washed free of the antibiotic. Regrowth resulted in rosette levels similar to those found originally in the three allotype-bearing populations. Stripping the cell surface allotype with pronase, and allowing regrowth of allotype overnight also resulted in one of four animals regaining the ability to express both allotypes at the surface in the plaque-forming situation. Lymphocytes from homozygous controls (b4,4 and b6,6) displayed their own individual allelic markers either when the cells from each were tested alone or in combination, unimmunized or immunized. An additional finding was the apparent lack of allelic preference for NIP in the heterozygotes as approximately similar numbers of cells were found bearing the b4 and b6 marker at the surface in the NIP plaque.

Alleles

Immunological memory after priming with a thymus independent antigen, NIP-ficoll. 4-hydroxy-5-iodo-3-nitrophenylacetyl coupled to polymer of sucrose and epichlorhydrin.

The capacity of mouse spleen fragments to mount an anti-NIP (4-hydroxy-5-iodo-3-nitrophenylacetyl) response in vitro was studied. The fragments came from unprimed, NIP-Ficoll (polymer of sucrose and epichlorhydrin) or NIP-CG (chicken globulin) primed mice. Unprimed spleen fragments from C57BL/6 mice gave a good anti-NIP response to NIP-Ficoll, whereas CBA fragments did not. Priming with NIP-Ficoll made CBA fragments responsive and enhanced slightly the response of C57BL/6 fragments when stimulated with the same antigen. This memory effect could be seen only after a small priming dose. Priming the mice with NIP-Ficoll made their spleen fragments responsive to a protein conjugate of NIP (NIP-CG), but this effect was seen only after priming with a high dose. The antibody class distribution and the kinetics of the appearance of different immunoglobulin classes were similar in the primary and secondary responses in vitro. The peak responses of IgM, IgA and IgG were reached on day eight and the relative amount of IgG was the same in the primary and in the secondary responses. Spleen fragments derived from NIP-CG primed mice produced more IgG anti-NIP antibodies than fragments derived from untreated mice when immunized in vitro with NIP-Ficoll. The amount of IgG was, however, much higher when these fragments were challenged with the homologous antigen, NIP-CG.

Animals