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J W Goodman

Publications and source records attributed to J W Goodman.

At least 19 recordsLinked to original sources

A hemolytic plaque assay for activated murine T cells.

In an earlier report, it was shown that murine spleen cells cultured with concanavalin A (Con A) released into the culture supernatants helper and suppressor substances for antibody production. The present communication describes the production of rabbit antisera against culture supernates from Con A-activated spleen cells and their use in a plaque assay for mitogen-activated T cells. The plaque assay, utilizing SRBC to which Staphylococcal protein A had been coupled, the developing anti-supernatant antiserum and guinea pig complement, readily detected secreting T cells. The T-cell nature of the plaque-forming cells (PFC) was established principally by the following: (a) the majority of lymphocytes in the centers of plaques were Thy-1-positive by fluroescence; (b) spleen cells depleted of B cells by incubation in plastic dishes coated with rabbit anti-mouse Ig antibody gave greatly enriched PFC responses; (c) anti-Thy-1 and anti-Lyt-2.2 treatment of spleen cells almost completely depleted PFC; (d) T-cell mitogens (Con A and phytohemagglutinin) but not B-cell mitogens (lipopolysaccharides) induced PFC responses; (e) T cells maintained in culture for 10 d with Con A and T-cell growth factor yielded PFC. Kinetic and dose response studies showed that high doses of mitogen induced rapidly appearing T-PFC and the responses peaked at day 1--2 of culture. Lower doses of mitogen-induced PFC required longer periods of incubation for detection, indicating that cell activation and secretion may be different dose-dependent activities of mitogens. Another noteworthy finding was that the antiserum reacted with surface antigens of T-PFC, indicating that secreted products are expressed on the membranes of T cells, offering the possibility of isolating populations of cells with specific secretory potential. Although the precise nature of the T-cell products detected by the antiserum used in this assay are unresolved, 10% of the target-cell-adherent population from spleen cells of BALB/c mice sensitized to L929 cells formed plaques. This suggests that the antiserum has significant activity against the products of cytotoxic T cells, a finding which accords with the activity of anti-Lyt-2.2 serum against mitogen-induced T-PFC. The method clearly offers new possibilities for the analysis of T cells and their products and should provide an important approach to the clonal analysis of lymphokine production.

Animals

Macrophage-T cell interaction mediated by immunogenic and non-immunogenic forms of a monofunctional antigen.

As an approach to the elucidation of the essential steps in the immune pathway, the uptake and retention of immunogenic and non-immunogenic analogs of a monofunctional antigen by guinea pig macrophages and the efficiency of macrophages pulsed with the compounds to present antigen to sensitized T lymphocytes were compared. L-Tyrosine-azobenzene-p-arsonate (RAT) and its non-immunogenic analog, 4-hydroxyphenyl-n-propane-3-azobenzene-p-arsonate (RAN), react similarly with antiarsonate antibody, but RAN, unlike RAT, is unable to induce cellular immunity in guinea pigs. The uptake and retention patterns of the two compounds by macrophages differed in that, at a given time, more RAN than RAT was retained and detectable on cell surfaces by anti-arsonate antibody. Equivalent numbers of T lymphocytes from guinea pigs sensitized to RAT formed antigen-dependent clusters with macrophages pulsed with either RAT or RAN after 24 hr in culture, but not with macrophages pulsed with an azobenzenoid compound of unrelated specificity. On the other hand, T lymphocytes from guinea pigs immunized with RAN showed no significant capacity to bind to macrophages which had been pulsed with any of the compounds. The number of lymphocytes from RAT-sensitized animals which bound to RAT-pulsed macrophages remained relatively stable over a 48 hr period, whereas clusters of the same lymphocytes with RAN-pulsed macrophages dissocitated to background levels within that time. Early cluster formation mediated by RAN, as well as its ability to induce transient specific T cell unresponsiveness to RAT in vivo, indicate that T cells are capable of recognizing (binding) the non-immunogen. However, such early, and perhaps weak, interaction with RAN-pulsed macrophages did not induce DNA synthesis by T cells. Anti-Ia serum completely blocked cluster formation mediated by either RAT or RAN. Thus, the only significant distinction disclosed by these studies between the immunogenic and non-immunogenic compounds was the stability of macrophage-T cell interaction as determined by the persistence of antigen mediated cell clusters in culture, suggesting that this may be a factor in immunogenic discrimination.

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Rosette formation between murine lymphocytes and erythrocytes. A new locus in the H-2 region.

More than 5% of murine splenic lymphocytes form rosettes with syngeneic erythrocytes. This property was maximally expressed when the lymphocytes were cultured for 24 h before rosetting. About 70% of the rosetting lymphocytes were B cells and 30% were T cells on the basis of surface immunoglobulin and the Thy-1-antigen. Capping surface immunoglobulin had no effect on the capacity of lymphocytes to form rosettes, indicating that the receptor in question was not immunoglobulin. The capacity of lymphocytes to form rosettes with erythrocytes from other strains of mice was H-2 restricted. Extensive pairings of congenic and recombinant strains as donors of lymphocytes and erythrocytes showed that none of the known loci within the H-2 region-controlled rosetting. The involvement of regions on chromosome 17, telomeric or centromeric to H-2, was also excluded. The data were only compatible with the conclusion that this form of self-recognition is associated with a new locus (or loci) mapping between H-2G and H-2D.

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Thymic involvement in control of bone marrow growth. Use of T-cell-depleted hybrid mice.

Because of mounting evidence of involvement of thymus-derived cells in blood formation we have studied the growth of transplanted bone marrow in mice extensively depleted of T-lymphocytes (TCD). Poor growth of parental marrow was found not to be appreciably altered in TCD hybrid recipients. However, parental thymic lymphocytes even in massive doses were not able to augment hemopoiesis in TCD hosts, in contrast to findings from sham-thymectomized or age control mice. This indication that a third (host) cell takes part in the thymocyte-marrow stem cell interaction was reinforced by the finding that isogenic (hybrid) thymocytes administered to TCD mice 5 weeks before the final irradiation restored their ability to support thymocyte-induced augmentation of parental marrow growth. Data were obtained from theta-poor sham-thymectomized irradiated controls which are interpreted as evidence for a suppressor T cell. Thymocytes administered with marrow produced a shift toward granulopoiesis in TCD mice as well as in controls. From this finding we infer that although thymus-derived cells are intimately involved in regulation of myelopoiesis, the effect of administered thymic lymphocytes on the differentiative pathway does not depend on host T cells.

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Purification of functional, determinant-specific, idiotype-bearing murine T cells.

Strain A/J mice immunized with azobenzenearsonate (ABA)-mouse IgG conjugates develop suppression for anti-trinitrophenyl(TNP) responses to doubly conjugated (ABA,TNP) proteins. This suppression is specific for the ABA epitope and is mediated by T cells in cell transfer experiments. ABA-binding T cells from suppressed animals were purified by a two-stage procedure in which B cells were removed from spleen cell populations by adherence to plastic surfaces coated with anti-mouse Ig antibody, followed by binding the nonadherent population (more 95 percent Thy-1-positive) to surfaces coated with ABA-protein conjugates. Approximately 90 percent of the cells recovered by temperature-dependent elution from the ABA plates (similar to 2 percent of the spleen cells) bound antigen immediately afterward, and up to 50 percent of the cells bound anti-cross-reactive idiotype antibody. On the other hand, the nonadherent T-cell population was completely negative in the antigen- binding and idiotype assays. Another distinguishing feature of the two T-cell populations was that 78 percent of the adherent cells, but only 2 percent of the nonadherent cells, were Ia positive, although the specific I-region marker(s) expressed on the cells was not identified. The biological function of the antigen-binding T cells was investigated using a standard cell transfer protocol. Suppressor cells were enriched in the adherent population by a factor of at least 25, establishing that functional, epitope-specific, idiotype-bearing T cells can be significantly purified by this procedure. Note Added in Proof. We have recently isolated two types of ABA-binding molecules biosynthetically labeled with (35)S-methionine from NP-40 lysates of purified antigen-specific T cells. The molecules were purified by adsorption onto an ABA-Sepharose immunoadsorbent followed by elution with 9 M urea. Autoradiograms of SDS-PAGE of the eluates revealed components with tool wt of approximately 60,000 and 33,000 dahons. These molecules were not present in eluates from a bovine IgG-Sepharose control immunoadsorbent and thus represent specific ABA-binding products synthesized by T cells.

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Spatial requirements between haptenic and carrier determinants for T-dependent antibody responses.

To gauge the proximity between cooperating T and B cells required for effective triggering of antibody production, guinea pigs were immunized with bifunctional antigens in which the haptenic and carrier determinants were separated by rigid spacers of varied dimension. These took the form 2,4-dinitrophenol-(proline)n-L-tyrosine-p-azobenzenearsonate, where n varied from 1 to 40 proline residues. Animals immunized with n = 10 and n = 22 compounds made strong anti-DNP antibody responses, whereas animals immunized with bifunctional compounds containing longer spacers did not make antibody detectable by precipitation. It can be calculated on the basis of very strong physicochemical evidence for the rigidity and axial translation of poly-L-proline chains in solution that the cut-off point for effective interaction between T and B cells lies between 69 and 97 A U.

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Activation of B cell subsets by T-dependent and T-independent antigens.

The capacity of the trinitrophenyl haptenic group coupled to a series of chemically dissimilar carriers to cross-stimulate putative T-dependent and T-independent B-cell subpopulations was determined by using an in vitro limiting dilution technique to generate primary IgM responses. TNP-Ficoll and TNP-dextran, two T-independent antigens with little or no polyclonal mitogenicity, stimulate the same population of anti-TNP precursors, which is distinct from the precursor population activated by TNP-LPS, a T-independent polyclonal mitogen, or by TNP-HRBC, a T-dependent antigen. TNP-LPS and TNP-HRBC activate the same precursor population, indicating that LPS can substitute for the T cell signal in T-dependent B-cell responses, whereas nonmitogenic T-independent antigens cannot. However, the cumulative evidence from this and other laboratories suggests that LPS and T-dependent antigens activate B cells by different mechanisms. TNP conjugates of Ficoll and dextran, which are relatively poor inducers of polyclonal B cell activation, induced larger anti-TNP clones than did TNP-LPS, a strong polyclonal mitogen. Macrophages are required for the anti-TNP-Ficoll/anti-TNP-dextran response, whereas, a similar requirement has not been shown for the anti-TNP-LPS response. Thus, macrophages may function as polyclonal B cell activators in T-independent responses. Experiments in which TNP was coupled directly onto the macrophage surface support this hypothesis. B-cell heterogenity in T-dependent responses is suggested by experiments using the C3 receptor as a marker for functional subpopulations of B cells. Murine T cells cooperate with B cells that carry a receptor for C3 and with at least some B cells which lack the C3 receptor in a primary in vitro antibody response. In vitro culture experiments using populations of B cells fractionated on the basis of the C3 receptor showed that CR+ cells were unable to make T-dependent antibody responses in the presence of anti-C3 antibody, whereas the response of CR- B cells was unaffected. Using irradiated, carrier-primed spleen cells from B10.A mice as a source of helper cells for B cells derived from various congenic strains in an in vitro primary IgM response to TNP-KLH, CR+ B cells cooperated across haplotype differences in the I region of the MHC, whereas CR- B cells did not. Preliminary mapping experiments for the genetic restriction of CR- B cells suggest complementation between the I-A and I-C subregions of the MHC. These findings tentatively suggest the existence of alternative cooperative pathways between T cells and B cell subpopulations.

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T-lymphocyte activation by immunogenic determinants.

Synthetic antigens have been of great value in elucidating the relationships between antigen structure and lymphocyte activation. The compound RAT behaves as a monofunctional antigen in guinea pigs and mice, inducing T-lymphocyte responses without appreciable circulating antibody, although the ABA-specific B cell population is expanded by immunization with the monovalent molecule. On the other hand, bifunctional antigens composed of one RAT moiety serving as a carrier and a second chemical group, either identical to or different from RAT, serving as a hapten, induced antibody responses. In such responses, T cell specificity was always directed against the RAT component. Using symmetrical bifunctional antigens with rigid or flexible spacers between the two determinants, marked differences in structural requirements for cell triggering, assessed by antigen-induced lymphocyte proliferation, and for cell cooperation, determined by antibody formation, were found. Rigidly spaced bifunctional antigens serve admirably for cooperation but poorly for T cell activation, underscoring the advantage of two-point binding for the latter.

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Ability of thymic lymphocytes to alter CFU kinetics in radiation chimeras.

It is known that the poor colony-forming ability of B6 bone marrow transplanted into B6D2F1 hybrids can be improved if B6 lymphocytes are given in addition. It was recently reported that the augmenting lymphocytes decrease the doubling time of differentiating hemopoietic cells. To determine whether thymus cells alter the self-renewal of CFUs in this parent leads to F1 combination, retransplantation and 3H-thymidine 'suicide' were employed as methods to determine the cell-division rate. We have observed that in the presence of thymocytes, parental bone marrow cells are seeded more efficiently in the spleen, and the lag phase of the CFUs growth curve is shortened. However, thymic lymphocytes do not increase the slope of the exponential growth phase of CFUs.

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Dose-dependence of the augmentation of hemopoiesis by thymocytes.

We have used the spleen colony assay and the 24-h uptake of 59Fe by hemopoietic tissues to study certain quantitative aspects of the interaction of parent-strain thymocytes and marrow cells transplanted into lethally irradiated F1 hybrid mice. The data show that thymocytes augment bone marrow growth at least partly by increasing the proportion of stem cells from parental marrow that from colonies in the hybrid animal. This increase in spleen colony number is a linear function of the number of thymocytes injected within certain dose ranges. At higher thymocytes doses, a plateau is reached where further increase in the number of thymocytes injected does not result in an increase in the number of spleen colonies; this plateau occurs at just that level of response given by the same marrow dose when transplanted into isogeneic (parent-strain) recipients. Experiments in which 59Fe uptake up red blood cells and spleen was used to measure marrow growth yielded similar results, except that the plateau in uptake occurred at a much lower level than that measured for the same marrow dose in isogeneic recipients. This apparent discrepancy in results obtained from the two different assays may best be explained by the recent observation that thymocytes shift the differentiation pattern of marrow stem cells away from erythropoiesis and toward granulopoiesis. The absolute thymocyte dose seems to be more important than the thymocyte: marrow-cell ratio in determining the degree of augmentation observed.

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Colony-forming units in the spleen and bone marrow of young (C57BL/6xDBA/2)F1 hybrid mice.

Spleen or bone marrow cells from (C57BL/6 X DBA/2)F1 hybrid mice ranging in age from 1 to 32 days were transplanted into syngeneic irradiated adult recipients. By enumeration of macroscopic hemopoietic spleen colonies 8 days after transplantation, the colony-forming unit(CFU) content of the spleen and bone marrow of the young donor mice was determined. The CFU concentration in the bone marrow, initially at a level of 15.1--17.0 CFU/105 nucleated cells, increased during the third week of life and reached a value comparable to that of the adult during week 4. In contrast, the CFU concentration of the spleen decreased during the first 2 weeks and reached a plateau at a level of 4.45--6.66 CFU/105 nucleated cells during the third and fourth weeks of age. This was still significantly higher than that of the adult hybrid. The rise in prominence of the bone marrow as a hemopoietic organ during this period appeared to be due to an increase in total cellularity coupled with an increase in CFU concentration in this hybrid. While the cellularity of the spleen also increased during this time, the CFU concentration decreased, resulting in little change in the total CFU content of this organ.

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On the role of thymus in hemopoietic differentiation.

This study was performed to investigate further the connection between the thymus and blood formation suggested by earlier findings. Bone marrow, after in vitro treatment with either anti-thy 1.2 (alpha Thy 1.2) or nonimmune serum and complement, was transplanted to two separate groups of lethally X-irradiated isogenic recipient mice of several different genotypes. Twelve studies were done, and macroscopic spleen-colony numbers were found to be similar in the two groups; however, differences were found when spleens were examined microscopically. The most striking and consistent finding was a decrease in granulopoietic colonies in recipients of alpha-Thy-1.2-treated marrow. There were less pronounced decreases in erythropoietic and in total colonies (all hemopoietic kinds). Ratios of erythropoietic to granulopoietic colonies were regularly increased. Anemia did not develop over a period of 4 months in chimeras given either kind of treated marrow.

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Carrier-directed anti-hapten responses by B-cell subsets.

The capacity of the trinitrophenyl (TNP) haptenic group, coupled to a series of chemically dissimilar carriers, to cross-stimulate putative T- dependent and T-independent murine B-cell subpepulations was determined by using an in vitro limiting dilution technique to generate primary IgM responses. It was found that TNP-Ficoll and TNP-dextran, two T- independent antigens with little or no polyclonal mitogenicity, stimulate the same population of anti-TNP precursors, which is distinct from the precursor population activated by TNP-bacterial lipopolysaccharide (LPS), a T-independent polyclonal mitogen, or TNP-horse erythrocytes (HRBC), a T-dependent antigen. On the other hand, TNP-LPS and TNP-HRBC activate the same precursor population, indicating that LPS can substitute for the T- cell signal in T-dependent B-cell responses, whereas nonmitogenic T- independent antigens cannot. However, the cumulative evidence from this and other laboratories strongly indicates that LPS and T-dependent antigens activate B cells by different mechanisms. Of particular interest, LPS is incapable of activating B cells responsive to weakly- or nonmitogenic T-independent antigens. Based on clonal burst size, T-dependent antigens are capable of inducing greater antigen-specific B-cell proliferation than T-independent antigens. However, TNP conjugates of Ficoll and dextran, which are relatively poor inducers of polyclonal B-cell activation, induced larger anti-TNP clones than did TNP-LPS, a strong polyclonal mitogen. The findings reinforce the evidence favoring existence of multiple B- cell subpopulations with distinctive activation pathways. They also strengthen the proposition that a given B-cell subset can be activated by more than one mechanism.

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