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J L McIvor

Publications and source records attributed to J L McIvor.

8 recordsLinked to original sources

The immune response of allophenic mice to 2,4-dinitrophenyl (DNP)-bovine gamma globulin. I. Allotype analysis of anti-DNP antibody.

The question of whether or not lymphoid cells can cooperate across a histocompatibility difference barrier has been studied in several laboratories. Using an adoptive transfer system, Katz et al. (1) first showed that T cells from (low responder x high responder) F(1) mice, primed to the terpolymer L-glutamic acid, L-lysine, L-tyrosine (GLT), could collaborate with 2,4-dinitrophenyl (DNP)-primed B cells from a high responder, but not a low responder strain, in response to DNP-GLT. The response to GLT is under H- 2-1inked Ir gene control. In contrast, studies with mouse bone marrow chimeras have shown that T cells can interact with H-2-histoincompatible B cells in response to antigens not under Ir gene control (2-4). Another type of chimera, the allophenic mouse, has been used to study possible histoincompatible cell interactions to a number of antigens, including DNP-L- glutamic acid, L-lysine, L-alanine; L-glutamic acid, L-alanine, L-tyrosine; L-glutamic acid, L-lysine, L-phenylalanine; and poly-L (Tyr, Glu)-poly D,L- Ala-poly-L-Lys[T,G)-A-L] (5-9). The response to each of these antigens is under H-2-1inked Ir gene control. It was initially reported (8, 9) that in allophenic mice containing both high and low responder cells, the antibody to (T,G)-A-L was of both the high and low responder allotype. This was interpreted to mean that high responder T cells had cooperated with low responder B cells across a histocompatibility difference barrier in the environment of the allophenic mice. However, Press and McDevitt (10) have recently reported that additional and more accurate analyses of these allophenic mouse sera failed to detect any anti-(T,G)-A-L antibody of the low responder allotype. Moreover, in an experiment using bone marrow chimeras, there was no low responder allotype antibody produced in response to (T,G)-A- L(10). The present study was undertaken to test the immune response of allophonic mice to an antigen, DNP-bovine gamma globulin (DNP(56)BGG), known to be controlled by genes both inside and outside the H-2 complex (11, 12).(1) When high and low responder cells to DNP(56)BGG are present in allophenic mice, only antibody of the high responder allotype is produced. The results suggest that cell cooperation in allophenic mice cannot occur across a histocompatibility difference barrier in response to an antigen whose genetic control is at least partially within the H-2 complex.

Animals↗

Quantitative analysis of spleen cell and immunoglobulin allotype composition of (CBAxCBA/H-T6) in equilibrium C57BL/6 allophenic mice.

Fifteen (CBAxCBA/H-T6) in equilibrium C57BL/6 allophenic mice were analyzed for the parental composition of their spleen white blood cells and serum immunoglobulin allotypes. The spleen compositions, assessed by a microcytotoxicity test, showed that the animals covered a range of parental cell mixtures. The allotype compositions of the IgG2a and IgG2b subclasses were determined by a solid phase radioimmunoassay. Although the absolute amount of IgG2a and IgG2b varied markedly from animal to animal, the percentage of the two allotypes in each subclass was remarkably constant. This suggests that the synthesis of IgG2a and IgG2b may be under a coordinate control system. Also, the spleen cell compositons were in excellent agreement with both the IgG2a and IgG2b subclass compositions. The quantitative analysis of the immune systems of allophenic mice may be first step toward the understanding of the mechanisms of tolerance of histoincompatible cells in allophenic mice.

Animals↗

Chimeric drift in allophenic mice.

The composition of the immune system of 33 allophenic mice of four different types [C57BL/6 in equilibrium DBA/1, C57BL/6 in equilibrium (CBA X CBA/H-T6), C57BL/6 in equilibrium (A X SJL), DBA/1 in equilibrium (CBA X CBA/H-T6)] was studied. It was found that the parental composition of the peripheral white blood cells changed significantly during a two-month interval in 11/33 or 33% of the mice studied. This phenomenon has been termed chimeric drift. The animals were sacrificed between 9 and 16 months of age, and the parental composition of the peripheral white blood cells, spleen white blood cells, and thymocytes was determined on the day of sacrifice. It was foound that the peripheral white blood cell and spleen white blood cell compositions showed a high degree of correlation. However 8/33 or 24% of the mice studied showed discordance of the spleen and thymocyte cell populations. Seven of the 8 mice which showed spleen-thymocyte discordance, had also shown evidence of chimeric drift earlier in their lives. We suggest that this is evidence that chimeric drift may have an immunological basis.

Animals↗

The immune response of allophenic mice to the synthetic polymer L-glutamic acid, L-lysine, L-phenylalanine. II. Lack of gene complementation in two nonresponder strains.

The genetic control of the immune response of inbred strains of mice to certain antigens has been demonstrated to be governed by a set of Ir genes linked to the major histocompatibility complex (H-2) of mice (1,2). Until recently, the control was thought to be governed by single, dominant genes, located within the I region of the H-2 complex. Merryman et al. (3) originally demonstrated that the immune response to the synthetic terpolymer L-glutamic acid, L-lysine, L-phenylaline (GLphi) is under dominant, H-2-linked Ir gene control (4-7). This was shown both by crossing two nonresponder parental strains to produce responder offspring in the F(1) generation, and by the analysis of appropriate recombinant stains of mice. The two complementing genes have been mapped in the IA and IC regions of the H-2 complex, and have been termed beta and alpha, respectively (5,6). Thus, any strain of mouse may contain neither, one, or both genes. Only mice containing both genes are capable of responding to GLphi. It has been shown using F(1) hybrid and recombinant strains of mice, that the alpha- and beta-genes can complement each other in either the cis (on the same chromosome) or in the trans (on different chromosomes) position (8). In this paper we report the results of studies aimed at answering the question of whether or not the alpha- and beta- genes can complement each other when they are present in different lymphoid cells. To this end we have constructed allophenic mice composed of two nonresponder strains (A and C57BL/6), which show gene complementation in the F(1) generation. Allophenic mice are chimeras containing two cell types coexisting in a "normal" environment. The mice were tested for the specific cellular composition of the two parental cell types and were found to possess a complete range in the relative proportion of the two cell types. This report demonstrates that regardless of the mixture of cell types present in the allophenic mice, none of them were responders to GLphi. Thus no complementation of the alpha- and beta-genes is seen when the two genes are present in different cells.

Animals↗

Chimeric drift in allophenic mice: analysis of changes in red blood cell and white blood cell populations in C57Bl/6 in equilibrium (A X SJL)F1, C57Bl/6 in equilibrium (CBA X CBA/H-T6)F1, and C57Bl/6 in equilibrium DBA/1 mice.

Forty-seven allophenic mice of three different types (C57BL/6 in equilibrium (A X SJL), C57BL/6 in equilibrium (CBA X CBA/H-T6), and C57BL/6 in equilibrium DBA/1) were analyzed for changes in their peripheral white blood cell composition and hemoglobin composition with age. It was found that 10 of the 47 mice showed significant changes termed "chimeric drift" in one or the other or both of these parameters. These 10 mice were classified as unstable chimeras, as opposed to the 37 stable chimeras, which showed no apparent chimeric drift. There was an excellent correlation of peripheral white blood cell and hemoglobin compositions of the stable chimeras. However, the unstable chimeras showed little or no correlation of these two markers. Possible mechanisms of chimeric drift are discussed.

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