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M K Hoffmann

Publications and source records attributed to M K Hoffmann.

At least 19 recordsLinked to original sources

A stimulatory Mls-1 superantigen is destroyed by ultraviolet light while other Mtv-7 antigens remain intact. Significance for Mls-1 unresponsiveness.

Accessory cells present Ag together with costimulatory signals as immunogens and without costimulatory signals as tolerogens. Responsiveness and unresponsiveness are thus alternatives of T cell immune reactions to Ag. Superantigens appear to make an exception; being presented by accessory cells capable of providing costimulatory signals, these Ag induce a strong T cell response but leave T cells unresponsive to a secondary challenge (anergy). We show here that T cell anergy is not a mandatory consequence of superantigen-induced activation. Mls-1- BALB/c recipients of DBA/2 spleen cells mount vigorous Mls-1 responses in vivo but their T cells retain the ability to respond to a subsequent Mls-1 challenge in vitro. We tested the possibility that the inability of DBA/2 spleen cells to inactivate Mls-1-reactive BALB/c T cells was the result of excessive costimulatory activity provided by Mls-1+ DBA/2 B cells. Costimulatory accessory cell activity has been reported to be destroyed by UV light. We exposed superantigen-presenting cells to UV radiation and found that they had lost the ability to stimulate an Mls-1 response without, however, gaining the capacity to render Mls-1-specific T cells anergic. Despite their inability to noticeably stimulate Mls-1-reactive T cells, UV-treated Mls-1+ lymphocytes induced an absolute unresponsiveness in Mls-1- recipients to a second challenge with the superantigen. Our data are in agreement with previous evidence, confirmed here, that BALB/c mice establish immunity against Mls-1+ cells, which causes the accelerated rejection of superantigen-bearing lymphocytes. Thus, our data imply that, whereas it takes stimulatory superantigenic Mtv-7 gene products to induce the activation of superantigen-reactive T cells, nonsuperantigenic Mtv-7 gene products may induce an immune response leading to the elimination of Mtv-7+ lymphoid cells.

Animals

In vivo presentation of Mls-1 antigen by T and B lymphocytes.

Previous studies of minor lymphocyte stimulatory (Mls) presenting lymphoid cells had shown that B cells rather than T cells present stimulatory Mls-1 antigen in vitro whereas B as well as T cells present Mls-1 antigen in vivo. Deletion of Mls-1 reactive T cells in the thymus of newborn mice is induced by T cells rather than by B cells. Applying a recently developed method for measuring the Mls-1 response in Mls-1- mice we assessed the Mls-1 stimulatory activity of T and B cells quantitatively. B cells are significantly more effective than T cells in this process. Both Mls-1+ T and B cells are also capable of inducing Mls-1 anergy in Mls-1- mice. Remarkably few lymphoid cells from Mls-1+ animals are needed for this effect: a few thousand B cells or 10(4) to 10(5) T cells per mouse induce substantial Mls-1 anergy in Mls-1- mice. These low cellular requirements for Mls-1 anergy production correspond well to the low T cell requirements described for the induction of Mls-1 tolerance in newborn mice. However, the high efficacy of B cells in inducing peripheral Mls-1 anergy contrasts with their failure to induce neonatal tolerance in newborn animals. We attribute this discrepancy to the previous notion that stimulatory Mls-1 antigen is not delivered to the thymus and that B cells and T cells present qualitatively different Mls-1 related signals to Mls-1 reactive T cells.

Animals

Regulation of T cell function by Mtv-7 gene products.

Mls-1, a superantigen encoded by the endogenous mouse mammary tumor virus Mtv-7 induces immunological tolerance through deletion of antigen-reactive T cells. A remarkable difference between this self-antigen and self-MHC antigens is that while the mouse establishes tolerance against self MHC antigens by the time of birth it does not begin to delete T cells specific for the self-superantigen until they had mounted an immuneresponse against it. An immune response occurs normally several days after birth and may be delayed experimentally for weeks before the deletion process ensues. However, for effective deletion of Mls-1 reactive T cells the mouse must be exposed to Mtv-7 positive lymphoid cells within hours after birth. In reviewing here data obtained in this and other laboratories regarding experimental induction of Mls-1 tolerance in neonatal mice we are trying to make a case for the involvement of Mtv-7 encoded antigens distinct from the superantigen. We propose that T cells reactive with non superantigenic Mtv-7 determinants pose a threat to the establishment of chimaerism between Mls-1- neonates and Mls-1+ inocula, as they may cause the rejection of Mls-1 superantigen bearing lymphocytes. Chimaerism is essential for the establishment of lasting Mls-1 tolerance.

Animals

Induction of neonatal tolerance to the Mls-1a self-super-antigen. Time kinetics and MHC restriction.

We examined the accessibility of the thymus to a self-super-Ag encoded by the Mls-1a region of chromosome 1 and the process by which this Ag establishes immunologic tolerance. Intravenously administered Mls-1a Ag accumulates quickly in peripheral organs of adult or newborn Mls-1a- recipients, where it mounts an immune response. The Ag does not enter the thymus in detectable amounts and does not induce an immune response of Mls-1a-responsive T cells present in this organ. Instead, the thymus of newborn Mls-1a- recipients of Mls-1a+ lymphoid cells continues for several days to export Mls-1a-reactive T cells, which respond to Mls-1a Ag when they encounter it in peripheral organs. This response peaks around day 3 or day 4 and declines very rapidly thereafter. The deletion of intrathymic Mls-1a-reactive T cells ensues simultaneously with this decline. It has previously been shown that Mls-1a Ag causes deletion or anergy of Mls-1a-reactive peripheral T cells, subsequent to their activation. We see the same time kinetics in producing deletion or anergy of Mls-1a-reactive T cells in the thymus of newborn animals, with the exception that the activation phase that precedes the deletion of Mls-1a-reactive T cells occurs in the periphery and not in the thymus. This observation indicates that thymic Mls-1a-specific T cells are not deleted through activation. Whether their deletion depends on a feed-back from the peripheral activation of Mls-1a-reactive cells, as the time relationship could suggest, is not clear. The finding establishes, however, that the deletion of functionally mature Mls-1a-reactive T cells and the activation of such cells are not necessarily related events, which may or may not utilize a common trigger mechanism, such as the engagement of the TCR. Concerning the trigger mechanism, we report that Mls-1a-specific deletion of T cells is an MHC-restricted process, whereas Mls-1a-specific activation of T cells is not MHC restricted.

Animals

A characteristic Mls-1a response precedes Mls-1a anergy in vivo.

T cells expressing V beta 6 variable gene segments of the T cell receptor undergo blast formation and divide in mice after injection of lymphoid cells bearing minor lymphocyte-stimulating (Mls)-1a gene products. This in vivo Mls-1a response resembles in vitro Mls-1a stimulation; it is dose dependent, not MHC-class II haplotype restricted, but requires expression of functional IE gene products. The in vivo Mls-1a response is followed by a complete and specific in vivo Mls-1a anergy and a partial in vitro Mls-1a anergy. The measurement of a Mls-1a response in vivo and of the establishment of in vivo anergy to it provides a convenient method to assay Mls-1a reactivity of T cells in vivo on a cell-by-cell basis in terms of cell surface phenotype, size, and mitotic activity.

Animals

B cells control the aggregability of CD4 on T cells through continuous physical interactions.

It has previously been demonstrated that a gene on chromosome 1 in or near Mls-1 controls, on the surface of B cells, the mobility and aggregability of major histocompatibility complex (MHC) class II molecules but not the mobility or aggregability of other B-cell molecules, such as immunoglobulin (Ig) and class I antigens. We report here that this gene may also influence the aggregability of two class II antigen-reactive molecules on the surface of T cells, the T-cell receptor complex and CD4. The aggregability of the two membrane components is markedly higher on Mls-1+ T cells than on Mls-1- T cells. The properties of this phenomenon were examined in vitro as well as in vivo with particular emphasis on CD4 aggregability. It was found that, after removal of B cells, T cells lose the ability to aggregate CD4 in our standard CD4 aggregation assay. Similarly, T cells isolated from the B-cell-deficient environment of the thymus failed to aggregate CD4. Addition of B cells to either thymic T cells or B-cell-depleted peripheral T cells established CD4 aggregability within minutes. This process can be blocked with antibody against CD4 or antibody against Ia. The Mls-1 genotype predicts within the limited tests of this study the efficacy of the B-cell ability to impose a CD4 aggregation pattern on T cells: Mls-1+ B cells are markedly more effective in this respect than Mls-1- B cells. This can be demonstrated in tissue culture as well as in the animal. Similar to the Mls-1 response, this is a one-way process: Mls-1+ B cells confer to Mls-1- mice a CD4 aggregation pattern typical of the Mls-1+ mouse while Mls-1- B cells do not impose a Mls-1b-typical CD4 aggregation pattern in Mls-1a mice. Mls-1+ B cells also influence the composition of lymphocytes in the mouse. Mls-1+ mice or Mls-1- mice treated with Mls-1+ B cells have fewer T cells and more B cells in their spleen than Mls-1- animals. The gene that encodes stimulatory Mls-1 cell-surface structures has recently been identified as an endogenous mammary tumour virus (Mtv-7). We expect that the analysis of the virus genome will produce information whether the effects described here can be attributed to the virus or not.

Animals

Tumor necrosis serum induces a serologically distinct population of NK cells.

Murine spleen cells generate nonspecific cytotoxic cells, referred to as natural killer (NK) cells, within 4 d of incubation in Mishell-Dutton cultures. This NK cell type does not arise in cultures of BALB/c.nu spleen cells or in cultures of T-cell depleted C57BL/6 spleen cells, indicating that its activation depends on T cells. Another type of NK cells is induced by tumor necrosis serum in murine spleen-cell cultures. It arises within 24 h and its activation does not depend on T cells. This cell type (and its precursor) expresses the recently discovered cell-surface marker Qa5 (controlled by the Q region of chromosome 17) that distinguishes this NK cell from the NK cell that depends for its activation on thymic function. Qa5+ NK cells are also induced by interferon.

Animals

Bacterial lipopolysaccharide activates suppressor B lymphocytes.

Lipopolysaccharide (LPS) extracted from the outer cell wall of Gram-negative bacteria modulates the immune response in vivo and in vitro. Depending on the experimental conditions, it may enhance or inhibit the production of humoral antibody. The pathway by which LPS suppresses antibody production is examined in this study. C57BL/6 spleen cells incubated with LPS (greater than 10 micrograms/ml) not only fail to produce antibody to sheep erythrocytes in vitro but also, when transferred 24 hr after stimulation with LPS, inhibit antibody production in spleen cells that were not treated with LPS. This observation suggested that LPS activates suppressor cells. We have identified a suppressor B cell as mediator of LPS-induced immune suppression and determined its cell surface antigen phenotype as Ig+, Ia+, CR+, Ly-B-2+,PC1-.LPS does not induce suppressor macrophages or suppressor T cells, nor are macrophages or T cells required for the generation of suppressor B cells by LPS.

Animals

Macrophage factor controlling differentiation of B cells.

Peritoneal macrophages of the mouse produce, in response to cell wall components of Gram-negative bacteria (lipopolysaccharide and lipoproteins), a factor that causes antigen-stimulated B cells of differentiate into antibody-producing cells. Unlike lipopolysaccharide, this factor is not mitogenic for B cells. Production of the macrophage factor does not depend on participation of T cells or other accessory cells since it is readily produced by several cloned macrophage cell lines as well as by peritoneal macrophages of athymic nude mice. The factor is active only in conjunction with antigen. T cells, although apparently not necessary, amplify its effect. The factor induces phenotypic differentiation of B cell precursors as selectively as thymopoietin induces differentiation of prothymocytes.

Animals

Helper T cell-replacing factors secreted by thymus-derived cells and macrophages: cellular requirements for B cell activation and synergistic properties.

The biologic activities of helper T cell-replacing factors derived from concanavalin A-stimulated murine T cells (TRF-T) and from lipopolysaccharide-activated macrophages (TFR-M) have been compared. TRF-T stimulates immune responses to heterologous erythrocyte antigens (SRBC and BRBC) in T cell-depleted spleen cultures but not in macrophage-depleted spleen cultures. TRF-M stimulates immune responses in both T cell-depleted and macrophage-depleted spleen cultures. Under conditions where LPS stimulates the release of TRF-M from cultures of activated macrophages, TRF-t has no effect on TFR-M production. Thus. TRF-T does not appear to function by stimulating the release of TRF-M from macrophages. In macrophage-depleted spleen cultures, saturating concentrations of TRF-T and TRF-M when mixed together exhibit striking synergistic effects on the induction of immune responses to erythrocyte antigens. The kinetics of the synergistic effects of TRF-M and TRF-T are consistent with an effect of TRF-M on the production of TRF-T sensitive B cells.

Animals

Polyclonal activation of CR+ and CR- B lymphocytes: the kinetics of initiation of DNA and immunoglobulin synthesis by lipopolysaccharide.

B cells that carry the complement receptor (CR+) were separated from B cells that lack the complement receptor (CR-) by velocity sedimentation or by passage through C-coated Sephadex columns. The kinetics of responses to bacterial lipopolysaccharide (LPS) in both B cell subpopulations were determined in three assay procedures: 1) incorporation of radioactive thymidine into DNA; 2) incorporation of radioactive leucine into immunoglobulin; 3) enumeration of cells forming polyclonal antibody to the 2,4,6-trinitrophenyl hapten. Although both subpopulations of B cells responded to LPS, they differed in the time course. CR- B cells responded with a delay of approximately 24 hr as compared with the response of CR+ B cells. The implications to the ontogenetic status of CR+ and CR- B subpopulations are discussed.

Animals

Serum from LPS nonresponder C3H/HeJ mice does not support the formation of functional EAC reagents.

Serum from C3H/HeJ mice in contrast to serum from other mouse strains does not convert EA into EAC. A factor in supportive serum permits nonsupportive C3H/HeJ serum to produce a functional EAC-rosetting reagent. This factor is heat stable. Its concentration in serum parallels the sensitivity of mice to LPS. It is absent or inoperative when sensitivity is reduced on a genetic basis and increased when sensitivity is increased by treatment with BCG.

Animals

B-cell activation by lipopolysaccharide. Distinct pathways for induction of mitosis and antibody production.

The role played by macrophages in two effects of lipopolysaccharide (LPS) on the immune system of the mouse-substitution for helper T cells and induction of B-cell mitosis-has been investigated. C3H/HeJ mice are unresponsive and do not produce (as other strains do) antibody to 2,4,6-trinitrophenol (TNP) conjugated with autologous mouse erythrocytes (MRBC-TNP) in the presence of LPS. We found that C3H/HeJ spleen cells produce antibody to MRBC-TNP when (a) LPS and macrophages from LPS-responsive C3HeB/FeJ mice or (b) tumor necrosis serum ([TNS] induced by LPS in responsive mice) are added. The mitotic response was not restored. The findings suggest that adjuvanticity and mitogenicity represent distinct pathways of B-cell activation by LPS, subject to different regulatory mechanisms.

Adjuvants, Immunologic

The Ly phenotype of suppressor T cells arising in mice subjected to a graft-versus-host reaction.

T cells with helper and suppressor functions arising during graft-versus-host reaction (B6 vs. BDF1) have been characterized with respect to their Ly surface antigens. Helper cells were found to express the phenotype Ly 1+2- and suppressor cells the phenotype Ly 1+2+. Ly 1-2+ T cells had no suppressive effect in this system. T cells of the host did not contribute to either activity.

Animals