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G J NOSSAL

Publications and source records attributed to G J NOSSAL.

At least 19 recordsLinked to original sources

ANTIGENS IN IMMUNITY. IX. THE ANTIGEN CONTENT OF SINGLE ANTIBODY-FORMING CELLS.

Flagellar antigens from S. adelaide bacteria were labelled with carrier-free (125)I so as to achieve a substitution rate of 0.1 to 2.1 radioactive iodine atoms per flagellin molecule. Lymph nodes from rats injected with small amounts of these antigens were teased into a single cell suspension. Single antibody-forming cells were identified and submitted individually to autoradiography so as to measure their content of iodine (125)I. The study was confined to the 7S phase of the primary response. Grain counts over 216 single antibody-forming cells were no higher than counts over equivalent background areas in the emulsion. This finding suggested that the cells contained little or no macromolecular antigen, and it was considered very unlikely that there were sufficient macromolecules of antigen in a plasma cell to act as a direct template on polysomes for the formation of antibody. The question of the possible presence, in such cells, of fragments of antigen was considered. This possibility, while not supported by the present results, cannot be excluded at present.

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ANTIGENS IN IMMUNITY. VI. THE PHAGOCYTIC RETICULUM OF LYMPH NODE FOLLICLES.

The localization of antigen in primary follicles and germinal centers of rat popliteal lymph nodes described previously using I(125)- and I(125)-labeled antigen has been confirmed by direct staining with fluorescent antibodies. A fine web of phagocytic reticulum in primary follicles was found to be responsible for antigen localization in this area. The nature of this web was confirmed by studies of the localization of colloidal carbon. This unique feature of primary follicles is discussed in relation to its importance in the induction of immune responses, our belief being that the great surface area of antigen retaining cytoplasm in primary follicles is responsible for the appearance of germinal centers in these particular parts of the node.

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SINGLE CELL STUDIES ON 19S ANTIBODY PRODUCTION.

Rats were immunized with Salmonella adelaide flagella. By zone centrifugation of serum samples in sucrose gradients, it was shown that, as in many other systems of antibody formation, the first response was the formation of 19S, mercaptoethanol (ME)-sensitive antibody. This was quickly replaced by 7S, ME-insensitive antibody. Popliteal lymph node cell suspensions were prepared, and cells with antibody on their surface were identified by the method of bacterial adherence. By micromanipulation such cells were washed, placed into microdroplets, examined under high-power phase contrast and broken to release intracellular antibody. These droplets were then studied in either of two ways. In the first method, each droplet was halved and one half treated with ME. Then both halves were titrated for immobilizing antibody through serial twofold dilution of the half microdroplets. Droplets showing destruction of antibody by ME were classified as 19S; those showing no reduction in titer as 7S; and those showing significant (>1 log(2)) reduction as double producers; i.e., cells containing both 7S and 19S antibodies. In the second method, droplets were divided into 4 equal quarters, for testing after treatment with either ME, or a specific rabbit anti-rat 7S globulin serum, or both. In these experiments, cells showing some remaining antibody after treatment with either reagent, but not after treatment with both reagents, were classified as double producers. Of 144 cells tested, 123 contained readily detectable amounts of antibody. These comprised 42 19S cells, 64 7S cells, and 17 double producers. The double producers were frequent at times when the switchover from 19S to 7S antibody production was occurring. All except 4 of the cells in the study could clearly be identified as members of the plasma cell series. Though 7S cells became more frequent as the cell population matured, no clear-cut correlation between cell immaturity and 19S production could be obtained. In the primary response many fully mature plasma cells contained only 19S antibody; conversely, in the secondary response many blasts contained 7S antibody. No morphological difference between 19S and 7S cells could be found. The results suggested that many cells or cell clones go through a sequence whereby each forms first 19S and later 7S antibody with identical combining sites.

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Autoradiographic studies on the immune response.I. The kinetics of plasma cell proliferation.

The origin and growth kinetics of plasma cells have been investigated using autoradiographic labeling techniques. Rats immunized once with Salmonella flagella were given a single pulse of H(3)-thymidine 4 or 40 weeks later. 2 hours after the tracer injection, they received a secondary antigenic stimulus. When animals were sacrificed immediately only certain cells from the resting primarily immunized lymph nodes, notably large and medium lymphocytes, were labeled. Subsequent to secondary stimulation, animals were killed at intervals; nearly all the plasma cells formed within the next 5 to 6 days were labeled. They must thus have been the progeny of cells already capable of synthesizing DNA in resting nodes, most probably of large lymphocytes. Plasmacytopoiesis began with little or no lag following secondary immunization, and the number of labeled plasma cells rose exponentially between the 2nd and 4th day, with a doubling time of about 12 hours. Studies of mean grain counts of primitive cells also suggested that the generation time of plasmablasts was 12 hours or less. The hypothesis was proposed that immunological memory depended on the persistence, following primary stimulation, of a continuously dividing stem line of primitive lymphocytes, reactive at all times to further antigenic stimulation.

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Autoradiographic studies on the immune response. II. DNA synthesis amongst single antibody-producing cells.

The DNA-synthesizing capacity of single antibody-forming cells was tested by a combination of micromanipulatory and autoradiographic techniques. Rats were immunized with S. adelaide flagellin, a protein antigen known to contain significant contamination with somatic (O) antigen. Single cells from secondarily immunized rats were tested for production of anti-H and anti-O antibodies by previously described and newer techniques. Positive antibody producers were transferred onto clean dry slides by micromanipulation, and autoradiographs were performed. When rats had received tritiated thymidine 1 hour before killing, labeling of antibody-forming cells was taken to imply that the cell was preparing for further mitotic division. It was found that on the 2nd and 3rd day of a secondary response, many of the antibody-producing cells in the nodes (chiefly plasmablasts) were incorporating tritiated thymidine. At the height of the cellular response, however, at 4 and 5 days, the majority of active antibody producers (chiefly mature plasma cells) were incapable of DNA synthesis. There appeared to be an inverse relationship between the antibody-forming and DNA-synthesizing capacities of the cell population under study; as more of the cells studied formed detectable antibody, fewer of them incorporated the DNA precursor. The age of plasma cells was also studied. Animals were killed at the height of the cellular immune response, having previously received an injection of tritiated thymidine 1 to 48 hours before killing; i.e., at 63 to 110 hours after their secondary stimulus. As the interval between isotope injection and killing increased, the proportion of antibody-forming cells showing labeling increased. With an interval of 30 hours, about half the antibody-forming cells were labeled and of 48 hours, over 95 per cent were labeled. This was taken as evidence that, few, if any, antibody-forming cells found at the height of a secondary response were more than 48 hours old. On the basis of these experiments and those reported in the accompanying paper, a simplified scheme showing the development of an antibody-forming clone in the secondary response was proposed.

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