Ascaris suum: suppression of reaginic and hemagglutinating antibody responses in the mouse by crude extract and maintenance fluid.
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Biomedical subjects
Publications and source records attributed to S Shinka.
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The cellular basis of the mechanism of immunological tolerance to human gamma-globulin (H gamma G) induced in foetal and neonatal mice by materno-foetal or materno-neonatal transfer after a single injection of tolerogen (deaggregated H gamma G) into the mothers was investigated using a cell transfer system and assays of passive haemagglutinating antibodies and plaque-forming cells to H gamma G. The results demonstrated that B cells are mainly involved in the tolerance induced on the fourteenth day of gestation, whereas inactivation of T cells may account for the tolerance induced on the eighteenth day of gestation and in the neonatal stage. Treatment of the mothers with tolerogen and then anti-H gamma G serum reduced the tolerance induced on the fourteenth day of gestation, but did not affect that induced on the eighteenth day of gestation and in the neonatal stage. Cell transfer experiments showed that B-cell tolerance induced on the fourteenth day of gestation was prevented by passive antibody, while T-cell tolerance induced on the eighteenth day of gestation and in the neonatal stage was not affected by passive antibody. Assay of the anti-DNP antibody response after immunization with DNP10-H gamma G showed that treatment of mice with the tolerogen on the eighteenth day of gestation, but not the fourteenth day of gestation, inactivated H gamma G-reactive helper cells. The significance of these results is discussed in relation to the results of the cell transfer experiments described as above.
Salmonella flagellin, which is a constitutional subunit of the flagellum, was shown to have antigenic determinants distinct from its own serotypic ones. These antigenic determinants were found to be common to flagellins from the so-called g-complex serotypes, such as fg, mt, gm, gt, gp and gmptu, but not to those from other serotypes, such as a, i or enx. Rabbits immunized with flagellin of serotype "fg" produced anti-"fg" flagellin antibodies. Only about 20 percent of these corresponded to the serotype determinants of the "fg" on the surface of the flagella, and the remaining 80 percent reacted with the flagellin of the unrelated serotype "mt", and corresponded to the distinct determinants common to the flagellin molecules. These antigenic determinants were detected by the immunoferritin technique at only one, not both, terminals of the flagellar fragments, suggesting that a unidirectional arrangement of flagellin subunits in the flagella may expose the inherent conformation of the subunits at only one end of the flagellum.
A peptide fragment Fr. 17 (Lys1-Cys-Asn27 Leu129-Cys-Ala122) of hen egg white lysozyme (HL) was previously found to retain at least one antigenic determinant region of the native protein. In this work a highly purified preparation of Fr. 17, contaminated with less than 0.01% HL and less than 1% of other fragments was found to be strongly immunogenic to rabbits. The kinetic patterns of antibody formation against Fr.17, assayed by passive hemagglutination (PHA), were quite different from those of antibody formation against HL. The specificity of the antibody elicited to Fr. 17 was mainly directed to the Fr. 9-10-a region (Ala11-Asn27) while that of the antibody elicited to the Fr. 17 region in native HL was directed to the Fr. 15-b region (Lys1-Cys-Ala10 Leu129-Cys-Trp123). It is concluded that in the process of antibody formation, the recognition of the Fr. 17 region in native HL is different from that of fragment Fr. 17.