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[The kinetics of vaccine antibodies against tetanus toxoid, diphtheria toxoid, measles virus, poliomyelitis virus and pneumococcus after allogeneic and autologous bone marrow transplantation and revaccination. 3: The kinetics of vaccine antibodies against tetanus toxoid and diphtheria toxoid after allogeneic and autologous bone marrow transplantation and combined revaccination against diphtheria and tetanus].

The 3rd part of the paper deals with the results of a combined revaccination against diphtheria and tetanus in a group of 25 children after allogeneic bone marrow transplantation (BMT) with and without graft versus host disease (GvHD) and after autologous transplantation. It can be shown that in the allogeneic transplanted groups with and without GvHD it is possible to build up a tetanus and diphtheria antitoxin titre in a safe protective cause by a 2nd basic immunisation consisting of 3 single vaccinations starting about 9 to 12 months later. For autologous transplanted children only 1 to 2 vaccinations at a later term than for the allogeneic transplanted children may possibly be sufficient.

Bone Marrow Transplantation↗

[Kinetics of vaccination antibodies against tetanus toxoid, diphtheria toxoid, measles virus, poliomyelitis virus and pneumococcus after allogenic and autologous bone marrow transplantation and booster vaccination. 2: Kinetics of vaccination antibodies against diphtheria toxoid after allogenic and autologous bone marrow transplantation].

In the second part of the paper we report on the results of the diphtheria antitoxin valuation of 8 children after allogeneic bone marrow transplantation (BMT) with and without graft versus host disease (GvHD) as well as on the kinetics of the diphtheria antitoxin of 5 children after allogeneic BMT with and without GvHD and of 5 children after autologous transplantation. The antibody valuation was done by a cell-culture assay. Whereas the inspection of the isolated data gives the impression of a swift antibody decrease up to the non-protective level from the 7th month after BMT, the kinetic tests are more highly differentiated. Besides rapidly decreasing values below the accepted protection rate of 0.01 IU/ml in the allogeneic transplanted groups, there are patients with positive antibody titres within an observation period of up to 24 months after BMT in the allogeneic as well as in the autologous transplantation group.

Bone Marrow Transplantation↗

[Kinetics of vaccine antibodies to tetanus toxoid, diphtheria toxoid, measles virus, poliomyelitis virus and pneumococci after allogenic and autologous bone marrow transplantation and booster immunization. 1: The kinetics of vaccine antibodies to tetanus toxoid after allogenic and autologous bone marrow transplantation].

Today BMT belongs to the established methods of treatment in haematology and oncology. Because of the constant increase of healthy long-term survivors after BMT the problem of immunological reconstitution and eventual possible late effects gets more and more importance. One problem, which til now has been few attention paid to, is that of the protection by vaccination after BMT. We report on the kinetics of the tetanus-antitoxin in 20 patients after allogeneic or autologous BMT and demonstrate the influence of a graft-versus-host disease and its therapy on the antibody kinetics. In the group of allogeneic transplanted children without a GvHD the tetanus-antitoxin titers felt below their detection range after a time of about 8 months whereas in the group with GvHD this effect already occurred after nearly 4 months. The autologous transplanted patients have a positive antibody level til the time of 20 months after BMT. As a consequence of the lost protection by vaccination after BMT follows the necessity of revaccinations respectively of boostering after immunological reconstitution.

Adolescent↗

Physicochemical analysis of purified diphtheria toxoids: is toxoided then purified the same as purified then toxoided?

Diphtheria toxin can be converted into a highly immunogenic and irreversibly detoxified vaccine either using the conventional process in which the crude toxin is formalinised and subsequently purified (DTxd(conv)) or by detoxification of the highly purified toxin (DTxd(new)). In this study, both DTxd(new) and DTxd(conv) were evaluated by use of physico-chemical methods. For some methods, results were also compared to those obtained for cross-reacting material (CRM197), which is a non-toxic mutant of diphtheria toxin. DTxd(new) was assayed to have a specific purity of at least 2300 LF/mg protein N, thereby exceeding Pharm. Eur. requirements by up to 35%. Superior purity of DTxd(new) could also be demonstrated by size exclusion HPLC experiments and by amino acid composition studies. Far-UV circular dichroism spectroscopy revealed that the secondary structure of DTxd(new) almost resembled that of CRM197, suggesting only minor molecular changes during detoxification. This study worked out differences between purified diphtheria toxoids. Physico-chemical means revealed the advantages of DTxd(new) being the purer and more defined product, thus making it highly efficient for its use as a vaccine carrier as well as a component of vaccine combinations.

Amino Acids↗

Safety and immunogenicity of tetravalent pneumococcal vaccines containing 6B, 14, 19F and 23F polysaccharides conjugated to either tetanus toxoid or diphtheria toxoid in young infants and their boosterability by native polysaccharide antigens.

BACKGROUND: New vaccines against pneumococcal infections in infancy are needed. We assessed in young infants the safety and immunogenicity of two tetravalent vaccines containing pneumococcal 6B, 14, 19F and 23F polysaccharides conjugated to either tetanus toxoid (Pnc-T) or diphtheria toxoid (Pnc-D). METHODS: Pnc-T or Pnc-D containing 3 microg of polysaccharide of each of the four pneumococcal polysaccharides or placebo were given intramuscularly in a double blinded fashion (25 infants per group) at 2, 4 and 6 months of age. At 12 months of age all 75 children were boosted with a 23-valent nonconjugate polysaccharide pneumococcal vaccine. Serum type-specific anticapsular antibody concentrations were measured at 2, 4, 6, 7, 12 and 13 months of age. Adverse events occurring within 72 h after each injection were recorded. RESULTS: Both Pnc-T and Pnc-D were well-tolerated. Pnc-T and Pnc-D had higher antibody concentrations compared with placebo after primary immunity (type 6B, 1.66, 1.40 and 0.60 microg/ml, respectively; type 14, 4.81, 2.65 and 2.22 microg/ml, respectively; type 19F, 2.40, 3.48 and 0.83 microg/ml, respectively; type 23F, 0.96, 0.44 and 0.35 microg/ml, respectively). Proportions of infants with concentrations above 1.0 microg/ml were also higher in the vaccine recipients than in those given placebo. After booster with the nonconjugate polysaccharide vaccine, both geometric antibody concentration and proportion with concentrations > or =1.0 microg/ml were significantly higher among either Pnc-T or Pnc-D recipients than among placebo recipients. CONCLUSIONS: Both Pnc-T and Pnc-D were well-tolerated, induced serotype-specific anticapsular antibodies and induced immunologic memory.

Antibodies, Bacterial↗

Reduction of pneumococcal nasopharyngeal carriage in early infancy after immunization with tetravalent pneumococcal vaccines conjugated to either tetanus toxoid or diphtheria toxoid.

BACKGROUND: Pneumococcal nasopharyngeal colonization is important for transmission of the organisms. We assessed the ability of two tetravalent conjugate vaccines administered in early infancy to prevent carriage of vaccine-related pneumococci. METHODS: A vaccine containing pneumococcal type 6B, 14, 19F and 23F polysaccharide conjugated to tetanus toxoid (Pnc-T) and a vaccine containing the same four polysaccharides conjugated to diphtheria toxoid (Pnc-D) were compared with placebo, in a double blinded study (25 infants per group). Vaccines (or placebo) were injected at 2, 4 and 6 months of age. At 12 months of age a native (nonconjugate) polysaccharide vaccine was administered as a booster. Serum type-specific anticapsular antibody concentrations were measured and nasopharyngeal cultures were obtained at 2, 4, 6, 7, 12 and 13 months of age. RESULTS: In general carriage of all pneumococci (vaccine- and non-vaccine-related) was low at age 2 months and increased with age. However, for the vaccine-related serotypes (6A, 6B, 14, 19F and 23F) carriage was not increased with age in Pnc-D or Pnc-T recipients. Of all cultures obtained after the full primary series, 7 of 72 (10%), 3 of 62 (5%) and 19 or 70 (27%) were positive for the vaccine-related pneumococcal serotypes among the Pnc-D, Pnc-T and placebo recipients, respectively (P = 0.001 for Pnc-D vs. placebo; P = 0.014 for Pnc-T vs. placebo). Most of the antibiotic-resistant isolates belonged to the vaccine-related serotypes. CONCLUSIONS: A significant reduction in the carriage of vaccine-related strains after administration of conjugate vaccines was observed. These preliminary results suggest that transmission of specific pneumococcal serotypes most often associated with disease and antibiotic resistance may at least partially be controlled by immunization.

Bacterial Vaccines↗

Long-term high immune response to diphtheria toxoid in rodents with diphtheria toxoid conjugated to dextran as a single contact point delivery system.

Cross-linked dextran beads were used as a carrier for development of a 'single-contact' vaccine delivery system. Diphtheria toxoid (DT) was covalently coupled to dextran beads (DEX-DT conjugate). The conjugate was immunoreactive with antibodies raised against native DT. Immunization of rats with DEX-DT conjugate generated on average 24 times higher antibody titres against diphtheria toxoid than immunization with the conventional DT absorbed on alum. The immune response was sustained for 9 months, with gradual decline of antibody titres thereafter. Significant antibody titres were measurable in rats after 1 year of immunization. DEX-DT had neither acute nor long-term adverse effects on the health of animals, as evidenced by local reactions, general behaviour, food intake, body weight gain and survival compared with controls.

Animals↗

Down-regulation of IgE and IgG4 antibodies to tetanus toxoid and diphtheria toxoid by covaccination with cellular Bordetella pertussis vaccine.

Pertussis (P) toxin acts as adjuvant for IgE formation against simultaneously administered Ags in animal models. P vaccination may also have an adjuvant impact on IgE formation against coadministered diphtheria (D) and tetanus (T) Ags in humans. Sera of 103 D-T-P-immunized and 319 D-T-immunized children aged 2 years were analyzed for IgE, IgG4, and IgG to D and T (radioallergosorbent test), total IgE and IgE against common inhalant allergens (CAP radioallergosorbent test fluoroenzyme immunoassay). Fewer D-T-P- than D-T-immunized children had sera positive for T-IgE (12.6 vs 53.6%, p < 0.001), T-IgG4 (71.6 vs 89.2%, p < 0.001), D-IgE (31.0 vs 70.5%, p < 0.001), and D-IgG4 (85.2 vs 93.4%, p = 0.039). Suppression of T-IgE was not dependent on the cutoff chosen for a positive test result, but was dependent on the proportion of D-T immunizations given with P. The risk for sensitization to common environmental allergens did not differ (odds ratio 0.953, 95% confidence interval 0.815-1.114). No significant differences between D-T- and D-T-P-immunized children were found with regard to T-IgG or D-IgG. In summary, IgE and IgG4 (but not IgG) serum levels to coadministered D- and T-Ags are suppressed among P-immunized children as compared with nonimmunized children. These results suggest that the presence of a microbial product during Ag exposure can down-regulate an IgE/IgG4 response in humans.

BCG Vaccine↗

Update on the supply of tetanus and diphtheria toxoids and of diphtheria and tetanus toxoids and acellular pertussis vaccine.

During the last quarter of 2000, the U.S. Public Health Service learned of a shortage of tetanus and diphtheria toxoids (Td) and tetanus toxoid (TT) resulting from decreased production of these vaccines by the two U.S. manufacturers. Previously published recommendations outlined priorities for use of the limited supply of Td and TT. The shortage was expected to be resolved by early 2001; however, on January 10, 2001, Wyeth Lederle (Pearl River, New York) announced it had stopped production of tetanus toxoid-containing products. Although a small amount of Td is produced by the University of Massachusetts for local distribution, Aventis Pasteur (Swiftwater, Pennsylvania) is now the sole nationwide distributor of Td and TT. Aventis Pasteur is shipping limited quantities of vaccine to assure a wide distribution of available doses.

Diphtheria Toxoid↗

Immunochemical studies of antitoxin produced in normal and allergic individuals hyperimmunized with diphtheria toxoid. I. Relationship of skin sensitivity to purified diphtheria toxoid to the presence of circulating, non-precipitating antitoxin.

Among a group of 131 young adults tested, there was a high degree of correlation between the occurrence of immediate skin reactions of the wheal and erythema type produced by purified diphtheria toxoid and personal or familial history of allergy of the hay-fever type. Of 39 Schick-negative subjects who received a "booster" dose of purified diphtheria toxoid, 19 showed no immediate skin reactions before immunization. The development of skin sensitivity in these subjects was associated with the production of non-precipitating circulating antitoxin. Three subjects produced 20 units or more antitoxin per cc. serum following immunization, without demonstrable precipitins. Despite the fact that none showed immediate skin reactions to Schick toxoid prior to immunization, all 3 possessed a high degree of skin sensitivity to toxoid following immunization.

Adult↗

In vitro induction of a diphtheria toxoid specific antibody response in human peripheral blood lymphocytes cultivated in the presence of diphtheria toxoid.

In comparison with the presently used potency test for diphtheria vaccine, in vitro examination of the immunogenicity of the vaccine would have great advantages. For this reason in vitro induction of diphtheria toxoid specific antibody synthesis in human peripheral blood lymphocytes cultivated in the presence of diphtheria toxoid was investigated. The results showed that a dose dependent synthesis of diphtheria antibody was induced by adsorbed diphtheria toxoid and combined vaccines containing the diphtheria toxoid component. Plain diphtheria toxoid appeared to be less immunogenic in comparison with adsorbed toxoid. There is some indication that the pertussis component had a stimulating effect on the diphtheria antibody synthesis. In conclusion, these results are promising for in vitro examination of the immunogenicity of diphtheria vaccines. The model will be validated for the routine control of diphtheria vaccine.

ABO Blood-Group System↗

Development of a mouse model to estimate the potency of the diphtheria toxoid component of diphtheria-tetanus and diphtheria-tetanus-pertussis vaccines.

A mouse model to estimate the potency of the diphtheria toxoid component in diphtheria-tetanus vaccines and diphtheria-tetanus-pertussis vaccines has been developed as an alternative to the conventional method of testing in guinea-pigs. Optimal conditions with regard to dose, route and period of immunization have been standardized. The maximum levels of antitoxin were detected five weeks after vaccination and the s.c. route was found to be optimal. Potency data have been compared with other studies in mouse models and with those obtained by the conventional method in guinea-pigs.

Animals↗