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M Jansze

Publications and source records attributed to M Jansze.

34 records · Page 2Linked to original sources

Nonionic block polymer surfactants modulate the humoral immune response against Streptococcus pneumoniae-derived hexasaccharide-protein conjugates.

Nonionic block polymer surfactants (NBPs) were tested for the capacity to stimulate the antibody response against hexasaccharide (HS), derived from Streptococcus pneumoniae type 3 capsular polysaccharide (S3PS), which was conjugated to proteins. The immune response was evaluated in the (CBA/N x BALB/c)F1 progeny, in which female mice are phenotypically normal whereas male mice carry an X-chromosome-linked immunodeficiency. NBPs L101, L121, 1101, and 1501 were able to increase anti-HS immunoglobulin M (IgM) and IgG levels in both normal and X-chromosome-linked immunodeficient mice (with up to 74-fold stimulation of antibody titers). Distribution of S3PS-specific antibodies over the various IgG isotypes was restricted after immunization with either HS-bovine serum albumin or HS-keyhole limpet hemocyanin (HS-KLH). Addition of NBPs (in particular 1501) resulted in a more diverse immune response with either antigen as judged by isotype distribution. Isoelectric focusing of individual sera and subsequent detection of S3PS-binding antibodies in these sera by immunochemical staining revealed a restricted number of different spectrotypes in the course of the immune response. Upon immunization of mice with HS-KLH, spectra of secreted antibodies were slightly more complex and more densely stained than after immunization with HS-bovine serum albumin. Furthermore, NBPs 1101 and 1501 appeared to be able to stimulate the secretion of antibodies, which were secreted only in small amounts without the use of NBPs. Different explanations for increased spectrotype diversity after immunization with KLH as the carrier and after administration of NBPs as the adjuvant are discussed.

Adjuvants, Immunologic↗

Measurement of the humoral immune response against Streptococcus pneumoniae type 3 capsular polysaccharide and oligosaccharide containing antigens by ELISA and ELISPOT techniques.

A sensitive ELISA has been developed to study immune responses in mice against Streptococcus pneumoniae type 3 capsular polysaccharide (S3PS) and hexasaccharide (HS)-protein conjugates derived therefrom. An advantage of the described system is that the same microtiter plates can be used for both ELISA and ELISPOT tests with a standardized washing procedure and diluent composition. S3PS induced predominantly IgM antibodies and minute amounts of IgG as measured by ELISA in serum. This was accompanied by large numbers (greater than 14000) of IgM spot-forming cells in the spleen. A shift towards IgG production was achieved by addition of lipid A. HS-protein conjugates induced predominantly IgG antibodies after booster immunization(s). Furthermore these conjugates induced large numbers (greater than 40000) of IgG spot-forming cells (SFC) in the spleen. ELISA and ELISPOT assays on microtiter plates are both reliable and highly reproducible assays for the evaluation of immune responses to S. pneumoniae antigens.

Animals↗

Nonionic block polymer surfactants enhance immunogenicity of pneumococcal hexasaccharide-protein vaccines.

Incorporated in oil-in-water emulsions, nonionic block polymer surfactants change the kinetics of generated antibody responses against pneumococcal hexasaccharide-protein conjugates: prolonged immunoglobulin M and immunoglobulin G responses are realized. Nonionic block polymer surfactants favor the immunogenicity of hexasaccharide-protein conjugates in young mice in such a way that a single injection yields long-lasting protection.

Adjuvants, Immunologic↗

Stimulation of liposome-induced humoral immune responses by non-ionic block polymer surfactants in Xid mice.

Non-ionic block polymers (NBPs) have proved to be potent adjuvants for the humoral immune response against liposomes haptenated with tripeptide-enlarged dinitrophenyl groups (hapten J). Since both reversed triblocks and normal octablocks displayed adjuvant activity, reversed octablocks, in which structural properties of both groups are combined, were also tested for their adjuvant activity. The latter compounds displayed very strong adjuvant activity for J-haptenated liposomes, not only in normal BALB/c but also in (CBA/N x BALB/c)F1 progeny. To test the applicability of NBPs as adjuvants in semi-synthetic vaccines, the capacity of NBPs to stimulate the immune response against liposomes haptenated with Streptococcus pneumoniae type 3 capsular polysaccharide-derived oligosaccharides was analysed. In these studies, again NBPs proved potent adjuvants, stimulating antibody production to a large extent. In male (CBA/N x BALB/c)F1 mice, which carry a X-chromosome-linked immunodeficiency (Xid), antibody levels were stimulated to the largest extent by a normal octablock. Stimulation of antibody titres, however, did not result in increased protection in these Xid mice.

Adjuvants, Immunologic↗

Adjuvant effects of nonionic block polymer surfactants on liposome-induced humoral immune response.

The ability of several surface-active agents to stimulate the humoral immune response in mice against haptenated liposomes was tested. The surfactants were block copolymers of hydrophilic polyoxyethylene (POE) and hydrophobic polyoxypropylene (POP) that differed in m.w., percentage of POE, and mode of linkage of POP to POE. The liposomes were haptenated with tripeptide-enlarged dinitrophenyl coupled to phosphatidylethanolamine, which was incorporated into the liposomal membrane. Additional injection of mice with surfactant stimulated serum hemagglutination titers and splenic plaque-forming cell (PFC) numbers to varying extents. Block polymers with POP chains flanking a POE center, as well as polymers with POE chains flanking a POP center, displayed high adjuvant activity. These block polymers stimulated the antibody response in a dose-dependent manner. They stimulated the antibody response with both high and low antigen doses. Furthermore, the addition of one of these adjuvants (25R1) reduced the amount of carrier lipid required in the liposome in order to obtain an optimal antibody response. The surfactants, which displayed high adjuvant activity, did not interfere with liposome stability as measured with a liposome lysis assay. Moreover, in vitro preincubation of liposomes with a block polymer did not affect their immunogenicity. Optimal adjuvant activity was observed when both adjuvant and liposomes were administered by the same route. Simultaneous injection of both components, however, is not a prerequisite. Conclusively, it can be stated that nonionic block polymer surfactants are potent adjuvants for stimulation of the antibody response against haptenated liposomes.

Adjuvants, Immunologic↗

Synthetic sulpholipopolysaccharides: novel adjuvants for humoral immune responses.

Referring to the strong immunostimulating activity of combinations of lipophilic agents and dextran sulphate, conjugates with chemical determinants of both types of adjuvants were synthesized and then examined for immunostimulatory capabilities in mice. Saturated fatty acids with varying chain lengths and sulphate groups were coupled covalently at defined ratios to the polysaccharide Ficoll (MW 400,000). Chemical analysis of 60 of the sulpholipopolysaccharides synthesized revealed that the number of sulphate groups per monosaccharide unit varied from 0 to 1.6, and the number of lipid groups from 0 to 0.8. Adjuvanticity of these conjugates for the humoral immune response was determined using sheep red blood cells (SRBC) and dinitrophenyl-haptenated bovine serum albumin (DNP-BSA) as antigens. Five days after intraperitoneal injection of adjuvant and antigen, the numbers of direct anti-SRBC plaque-forming cells (PFC) in the spleen were determined. Anti-DNP antibody titres were measured from 1 to 4 weeks after immunization. PFC responses to 2 X 10(6) SRBC were augmented up to a 100-fold by conjugates of Ficoll and sulphate (sulphopolysaccharides: SPs) or lipid groups (lipopolysaccharides: LPs). Introduction of low or moderate numbers of lipid groups in SPs reduced adjuvanticity. Adjuvant activity of sulpholipopolysaccharides (SLPs) with varying sulphate and high lipid content depended on the sulphate contents and the chain length of the lipids. Sulphate reduced adjuvanticity of the SLPs, and the number of sulphate groups required for complete annihilation increased with the chain length of the lipid. LPs and SLPs, including conjugates that did not enhance anti-SRBC PFC responses, augmented serum antibody responses to DNP-BSA while SPs were hardly effective.

Adjuvants, Immunologic↗

Route-dependent immunomodulation: local stimulation by a surfactant and systemic stimulation by a polyanion.

Immunomodulatory activity of the two synthetic adjuvants dimethyldioctadecylammonium bromide (DDA) and dextran sulfate (DXS) in relation to route and time of injection was investigated in mice. Humoral responses to sheep red blood cells (SRBC) were measured as the number of direct anti-SRBC plaque-forming cells (PFC) in the spleen 5 days after immunization. Both adjuvants stimulated the anti-SRBC response if adjuvant and antigen were injected simultaneously via the same route (either intraperitoneally or intravenously). Administration of adjuvant and antigen via different routes (intraperitoneally or intravenously, respectively or vice versa) resulted in enhanced humoral responses after DXS, but not after DDA. Intraperitoneal immunization of mice which were injected intraperitoneally with either adjuvant 4 days earlier resulted in diminished humoral responses. Immune responses in pretreated mice were not suppressed when the antigen was injected intravenously instead of intraperitoneally. In conclusion, DDA and DXS differ in immunostimulating properties as DDA enhanced only a response to antigen injected via the same route whereas DXS induced a systemic state of increased immunoresponsiveness. The immunosuppressive state induced by intraperitoneal injection of either adjuvant prior to immunization is restricted to the peritoneal compartment. Mechanisms underlying differences between both adjuvants and aspects of systemic immunopotentiation are discussed.

Adjuvants, Immunologic↗

Synergistic effects of synthetic adjuvants on the humoral immune response.

The effect of combinations of adjuvants on the humoral immune response to sheep red blood cells (SRBC) as antigen was investigated. Adjuvants belonging to two categories differing in physicochemical properties were used: surfactants (N,N-dioctadecyl-N',N'-bis-(2-hydroyethyl)propanediamine (CP-20,961), dimethyldioctadecylammonium bromide (DDA), neutrally charged liposomes, polyol (L 101 and L 121) and polyanions [dextran sulfate (DXS), liquoid and suramine]. All adjuvants but suramine augmented humoral responses to 2 X 10(7) SRBC measured by the number of direct anti-SRBC plaque-forming cells (PFC) in the spleen. The response to 2 X 10(6) SRBC was enhanced considerably by L 121 and DXS but hardly or not at all by the other adjuvants. Combinations of two adjuvants were made at distinct ratios (1:3, 2:2, and 3:1) and injected intraperitoneally with 2 X 10(6) SRBC. Low responses (5 X 10(3) PFC per spleen) were induced by combinations of liquoid or suramine with DDA or DXS, and by combinations of CP-20,961, liposomes, L 101 or L 121 with DDA. Combinations of the surfactants DDA, CP-20,961, liposomes, L 101 or L 121 with DXS evoked responses which were significantly higher than the sum of responses supported by the single adjuvants. Ratios of 1:3 or 2:2 (surfactant: DXS) resulted in the most effective combinations. The data obtained suggest that only adjuvants derived from two different physicochemical groups are able to act synergistically.

Adjuvants, Immunologic↗

Suppression of the cellular adjuvanticity of lipophilic amines by a polyanion.

Modulation of delayed-type hypersensitivity reaction (DTH) in mice by synthetic adjuvants and the mode of their action were investigated. Intracutaneous injection of azobenzenearsonate coupled to phosphatidylethanolamine (A-PE) without adjuvant did not induce DTH. Administration of A-PE with the quaternary amines dimethyldioctadecylammonium bromide (DDA) or N,N-dioctadecyl-N',N'-bis(2-hydroxyethyl)propane diamine (CP-20,961) induced a strong response. Other surfactants, dextran sulfate (DXS) and dextran were not effective. In combination with 200 nmol DDA the optimal dose of antigen was 5 nmol A-PE, while at higher antigen doses DTH was diminished. Responses on combination of two adjuvants and A-PE revealed that DXS counteracted the stimulatory effects of both DDA and CP-20,961. In vitro, DDA formed insoluble complexes with 14C-A-PE and at optimal antigen concentration more than 90% of the antigen was bound to the adjuvant. The percentage of 14C-A-PE bound to 200 nmol DDA decreased with increasing doses of 14C-A-PE. Addition of DXS to the mixture of 14C-A-PE and DDA reduced the percentage of 14C-A-PE bound to DDA. Dose-response curves demonstrated a close relationship between the inhibitory effects of DXS on the DTH and the A-PE/DDA complex formation. Nonsulfated dextran affected neither the DTH nor the formation of complexes in vitro. In conclusion, cellular adjuvanticity of DDA for the lipophilic antigen A-PE is probably the result of formation of insoluble complexes with the antigen. Free A-PE suppresses the cellular response to A-PE/DDA complexes. The adjuvant DXS inhibits DTH by reducing the amount of immunogenic A-PE/DDA complexes and thus increasing the amount of free, immunosuppressive A-PE.

Adjuvants, Immunologic↗

Immunomodulating properties of substances to be used in combination with liposomes.

Liposomes haptenated with tripeptide-enlarged dinitrophenyl (DNP) are known to act as thymus-independent antigens which induce a strong IgM response and only limited amounts of circulating IgG. When haptenated liposomes are used in vaccination studies, it is of practical importance to improve the immunogenicity of these complexes. Therefore, an evaluation was made of the potency of various substances to modulate the immune response in such a way that the total antibody production is increased, including a relative great increase of 2-mercaptoethanol (2-ME)-resistant antibodies and immunological memory is induced. The following substances were used: glycophorin A (GP-A), sialogangliosides (monosialo-, disialo- and trisialoganglioside), 6-0-stearoyl-MDP (MDP-SA) and lipid A (lip A). Lip A incorporated into liposomes was the only substance inducing considerable increases of both total and 2-ME-resistant haemagglutination (HA) titre after immunization. Depending on the dose tested, the sialic-acid-containing protein GP-A had a small and varying influence on the serum antibody response. Sialogangliosides transiently decreased in a dose-dependent manner the total antibody titre in serum. In contrast to lip A, the lipophilic bacterial adjuvant MDP-SA did not influence HA titres significantly. The number of plaque-forming cells (PFC) in the spleen was enhanced considerably after both primary and secondary immunization with liposomes containing lip A. The other substances tested induced only minor differences of the number of PFC. To some extent, lip A induced immunological memory. In conclusion, it can be stated that of the agents tested, only lip A is a potent and consistent stimulator of the humoral immune response to liposomes haptenated with DNP groups.(ABSTRACT TRUNCATED AT 250 WORDS)

Adjuvants, Immunologic↗

Combinations of two synthetic adjuvants: synergistic effects of a surfactant and a polyanion on the humoral immune response.

Synergistic effects of two synthetic adjuvants, dimethyldioctadecylammonium bromide (DDA) and dextran sulfate (DXS) on the humoral response to sheep red blood cells (SRBC) were investigated. Mice received intraperitoneal (ip) injections of adjuvant and antigen simultaneously. The number of plaque-forming cells (PFC) in the spleen were determined 5 days later and circulating anti-SRBC antibodies were measured till 16 weeks after immunization. Although combinations of DDA and DXS were very effective in enhancing the PFC response to both moderate (2 X 10(7] and low (2 X 10(6] doses of SRBC, synergy between the adjuvants was only observed at the low dose of SRBC. Optimal augmentation of the primary response to the low antigen dose was evoked by the combination of the highest dose tested of either adjuvant (1 mumol DDA and 1 nmol DXS) resulting in a 560-fold increase of the number of PFC in the spleen as compared to controls. Even combinations of relatively small amounts of both adjuvants were very effective in augmenting the response to SRBC. Mice receiving half the amounts of both adjuvants with 2 X 10(6) SRBC displayed increased numbers of PFC in the spleen at Day 5 as well as increased titers of total anti-SRBC antibodies at Week 1 and Week 2 and 2-mercaptoethanol-resistant antibodies from Week 4 till Week 16 as compared to the calculated sum of responses in mice which received either DDA (0.05 mumol per mouse) or DXS (0.05 nmol per mouse). The mechanism behind the synergy between these adjuvants is discussed and the possibility of discerning adjuvants on their modes of action is suggested.

Adjuvants, Immunologic↗

Effect of in vivo administration of different adjuvants on the in vitro candidacidal activity of mouse peritoneal cells.

The candidacidal activity (CA) of peritoneal cells (PC) in vitro was used as a measure of nonspecific microbicidal activity of phagocytes after intraperitoneal injection of mice with different adjuvants. Dilutions of PC were incubated with constant numbers of C. parapsilosis in a 96-well culture plate. The PC number causing 50% reduction of yeast colonies formed after 48 hr at 37 degrees C was called 1 CA50 unit. CA was expressed in CA50 units per 10(6) PC. Optimal reduction of the number of viable candida cells in vitro was established within 1.5 hr while 50% reduction was reached after 0.5 hr. In this test CA was, within limits, independent of the number of viable candida cells added per well (22 to 152 yeast cells), of the concentration of fetal calf serum (1-20%) and of the presence of heat-labile serum components. The CA of PC of individual mice was measured 6, 24, and 96 hr after injection of an adjuvant. In most instances optimal CA was observed 6 hr after administration of adjuvant and varied from 3.7 (methylamine) to 50 (Corynebacterium parvum strain 4982) units. With respect to the titer and duration of CA, the adjuvants were arranged in the following order of increasing efficacy: methylamine, heparin, polyol L 121, suramin, dextran sulfate, polyol L 101, dimethyldioctadecylammonium bromide, Liquoid, heat-killed Listeria monocytogenes, formalin-killed C. parvum strain 10387, and strain 4982. The CA induced by the latter strain persisted at least till 96 hr after injection. The induction of CA was accompanied by recruitment of polymorphonuclear cells. The contribution of distinct phagocytic effector cells to CA and the correlation between modulation of the specific and nonspecific immunity are discussed.

Adjuvants, Pharmaceutic↗

Immunogenic properties of octasaccharide-protein conjugates derived from Klebsiella serotype 11 capsular polysaccharide.

The tetrasaccharide repeating unit of the capsular polysaccharide of Klebsiella serotype 11, K11PS, comprises the following sequence: [----3)-beta-D-GlcpA-(1----3)-alpha-D-Galp-(1----3)-beta-D-Glcp-(1 ----] with a 4,6-O-(1-carboxyethylidene)-alpha-D-galactopyranosyl residue linked to O-4 of the glucuronic acid residue. Octasaccharide (OS) derived from K11PS by bacteriophage phi 11-associated glycanase, was coupled to bovine serum albumin and to keyhole limpet hemocyanin. The immunogenicity of various antigens after intraperitoneal immunization was studied by measuring the levels of circulating antibodies. Injection of BALB/c mice with K11PS resulted in induction of 2-mercaptoethanol-sensitive immunoglobulin M antibodies. The responses observed in BALB/c nu/nu mice and in male (CBA/N X C3H/HeN)F1 mice indicate that K11PS is a thymus-independent type 2 antigen. Immunization of BALB/c mice with either OS-bovine serum albumin or OS-keyhole limpet hemocyanin resulted in the induction of circulating 2-mercaptoethanol-resistant immunoglobulin G antibodies. Results in BALB/c nu/nu mice indicate that the OS-protein conjugates are thymus-dependent antigens. Since the OS-keyhole limpet hemocyanin conjugate induced antibodies in both (CBA/N X C3H/HeN)F1 females and males, we propose to refer to this kind of antigen as a thymus-dependent type 1 antigen, whereas OS-bovine serum albumin, which evoked immunoglobulins in (CBA/N X C3H/HeN)F1 females only, can be referred to as a thymus-dependent type 2 antigen.

Animals↗

Immunomodulating properties of two synthetic adjuvants: dependence upon type of antigen, dose, and time of administration.

The effects of two synthetic adjuvants on the antibody response to sheep red blood cells (SRBC) as a thymus dependent (TD) antigen and to dinitrophenyl59-Ficoll as a thymus-independent (TI-1) antigen were investigated in mice. Both dimethyldioctadecylammonium bromide (DDA) and dextran sulfate (DXS) augmented the humoral response to SRBC but not to dinitrophenyl59-Ficoll if injected simultaneously with antigen. Dose-response curves of both antigen and adjuvant revealed that DXS compared to DDA is a more effective adjuvant for the induction of a humoral response to SRBC. Intraperitoneal injection of DDA or DXS evoked a sequence of distinct immune responsive states in mice, measured by the capacity to develop an anti-SRBC response. A short immune-potentiating period (less than 6 hr) is followed by a suppressive, second immune-potentiating state. The immune suppressive state lasted for a period of about 8 days and was restricted to TD-antigens. Suppression could be totally overridden by injection of DDA or DXS simultaneously with antigen, suggesting that the suppressive state was reversible. The kinetics of the observed alteration of the immune response by DDA and DXS were very similar. It is concluded that differences in the modulation of the immune response by DDA and DXS are limited to the initial state. Long-term effects like the induction of a succession of distinct immune responsive states, are more or less similar for both adjuvants. Possible mechanisms by which these immunomodulators interfere with the immune system are discussed.

Adjuvants, Immunologic↗

Immunogenic properties in mice of hexasaccharide from the capsular polysaccharide of Streptococcus pneumoniae type 3.

Hexasaccharide (HS) containing 3 U of cellobiuronic acid was isolated from Streptococcus pneumoniae type 3 capsular polysaccharide S3 and coupled to bovine serum albumin (BSA), keyhole limpet hemocyanin (KLH), or tetanus toxoid (TT). The immunogenicity of these HS-protein conjugates in BALB/c mice was studied by measuring the production of circulating antibodies and the induction of protective immunity to viable S. pneumoniae type 3. Immunization of BALB/c mice with 0.5 micrograms of S3 resulted in the induction of immunoglobulin M (IgM) antibodies and complete protection against 25 U of a mean lethal dose of S. pneumoniae type 3 for 19 weeks after immunization. BALB/c mice immunized with 100 micrograms of HS9-BSA (containing 12 micrograms of HS) were also protected due to circulating IgM antibodies. Repeated injections with either 100 micrograms of HS9-BSA (three immunizations) or 100 micrograms of HS6-KLH (two immunizations) resulted in high levels of circulating IgG antibodies. These HS-protein conjugates induced complete protection which lasted at least 14 (HS9-BSA), 23 (HS6-KLH), or 8 (HS16-TT) weeks after the last immunization. Protection against viable S. pneumoniae type 3 could be passively transferred to nonimmunized mice by antisera containing IgM or IgG antibodies or both. Sera containing both IgM and IgG antibodies gave better protection than sera containing only IgM antibodies. The specificity of the induced protection was confirmed by challenge with the non-cross-reacting S. pneumoniae type 11.

Animals↗