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Biomedical subjects

G Dennert

Publications and source records attributed to G Dennert.

At least 55 records · Page 3Linked to original sources

Loss of F1 hybrid resistance to bone marrow grafts after injection of parental lymphocytes. Demonstration of parental anti-F1 T killer cells and general immunosuppression in the host.

B6D2F1 mice acutely reject parental C57Bl/6 bone marrow grafts, a phenomenon that is known as hybrid resistance. Injection of C57Bl/6 splenocytes into B6D2F1 recipients prior to bone marrow transplantation had previously been shown to facilitate growth of C57Bl/6 marrow grafts. We show in this report that for this effect to occur, radiation-sensitive T cells have to be present in the splenocyte inoculum. Loss of hybrid resistance following injection of C57Bl/6 splenocytes into B6D2F1 mice coincides with the appearance of T killer cells of C57Bl/6 origin that are specific for H-2 histocompatibility antigens of DBA/2. The parental T killer cells in unresponsive B6D2F1 mice express in vitro cytotoxic activity on H-2d targets and appear to be responsible for the acquired in vivo rejection of H-2d bone marrow grafts. Appearance of donor-derived T killer cells coincides with marked suppression of host immunity: lymphocytes from unresponsive B6D2F1 mice do not proliferate in mixed lymphocyte reactions and fail to respond to sheep erythrocytes in vitro, nor do they express natural killer (NK) activity. Concomitant with the suppression of NK activity, hybrid resistance to C57B1/6 marrow grafts disappears. This loss of resistance to bone marrow transplants is unspecific since third-party SJL marrow grafts are not rejected. It is concluded that suppression of hybrid resistance by injection of parental splenocytes into B6D2F1 mice is caused by a severe nonspecific suppression of host immune responsiveness by parental T cells that recognize disparate histocompatibility antigens in the host.

Animals↗

Suppression by cannabinoids of a cloned cell line with natural killer cell activity.

Preincubation of a cloned cell line with natural killer (NK) cell activity, as well as splenic mononuclear cells with either delta 9-tetrahydrocannabinol (THC) or 11-hydroxy-delta 9-tetrahydrocannabinol (11-OH-THC) suppressed NK cytolytic activity against YAC-1 target cells in a dose-dependent manner. THC was more inhibitory for cloned cells than 11-OH-THC and suppressed the lytic activity of these cells without reducing cell viability in the concentration range of 5 micrograms/ml (16 microM) to 10 micrograms/ml (32 microM). THC also inhibited proliferation of cloned NK cells, but this inhibitory effect was reversible in that extensive washing of cells following cannabinoid pretreatment eliminated the suppressive effect. Single-cell analysis revealed that THC did not inhibit the binding of cloned NK cells to target cells and further showed that NK cells freshly isolated from mouse spleen were restricted in killing capacity following binding to target cells. Therefore, THC and 11-OH-THC appear to directly inhibit NK cell cytolytic activity in a postbinding stage.

Animals↗

High activity of N-alpha-benzyloxycarbonyl-L-lysine thiobenzyl ester serine esterase and cytolytic perforin in cloned cell lines is not demonstrable in in-vivo-induced cytotoxic effector cells.

Recent observations have suggested striking similarities between complement-mediated and cell-mediated lysis. Both pathways share the terminal insertion of channels into target membranes, and unique esterases have been postulated to participate in the activation of cytolytic effector molecules. Since killer-specific esterases and channel-forming proteins can be demonstrated in in vitro cell lines, it is important to ascertain that the described esterase and channel-forming proteins are also present in killer cells from in vivo sources. Results presented here show that killer-cell-specific N alpha-benzyloxycarbonyl-L-lysine thiobenzyl ester serine esterase is induced in vitro concomitant with the sensitization of cytotoxic effector cells. In contrast, in-vivo-primed cytotoxic T cells or natural killer (NK) cells fail to express high levels of this enzyme. Assay of different cytotoxic effector cells reveals the presence of N alpha-benzyloxycarbonyl-L-lysine thiobenzyl ester serine esterase in clones with T killer and NK activity, but enzyme levels do not correlate with cytolytic activity nor does inhibition of esterase activity interfere with granule-mediated cell lysis. A similar result is seen with granule-mediated cytolytic activity. Cloned NK and T killer cell lines possess granules that are able to lyse erythrocyte targets. However, T killer cells sensitized in mixed lymphocyte culture or in vivo have no detectable cytotoxic granules. Cytotoxic granules are also not detected in NK cells isolated from animals.

Animals↗

Induction of bone marrow allograft rejection and hybrid resistance in nonresponder recipients by antibody: is there evidence for a dual receptor interaction in acute marrow graft rejection?

Acute marrow graft rejection in allogeneic or semiallogeneic donor-recipient mouse combinations has been suggested to be caused by natural killer (NK) cells. The unique in vitro specificity of NK cells for tumor cells, however, does not explain the specific rejection of bone marrow grafts by NK cells. Recent experiments have implicated antibody in marrow graft recipients as the specificity-inducing component that guides NK cells in an antibody-dependent cytotoxic (ADCC) reaction to attack the marrow graft. On the basis of this hypothesis, one would postulate that nonresponder marrow graft recipients can be converted into responders by injection with antibody of appropriate specificity. Results presented in this report show that this is indeed possible. Specific monoclonal or polyclonal antibody of IgG isotype induces marrow graft rejection in nonresponder recipients. This can be demonstrated in allogeneic as well as in semi-allogeneic (hybrid resistance) donor-recipient strain combinations. Antibody-induced marrow graft rejection is independent of complement and dependent on the presence of NK cells. Surprisingly, graft rejection induced by antibody is quite efficient in allogeneic and semiallogeneic marrow donor-recipient combinations, whereas it is generally poor in syngeneic combinations. This result is not understood if NK cells lyse bone marrow cells solely in an ADCC-type reaction. Because NK cells can lyse targets in an antibody-dependent as well as independent reaction, it is proposed that the binding of NK cells to targets via their receptors plays an additional role in the rejection of bone marrow in vivo. Preliminary evidence for this possibility is that NK cells in the apparent absence of antibody may have a detectable suppressive effect on the growth of marrow grafts in F1 hybrid mice transplanted with parental marrow grafts.

Animals↗

On the mechanism of unidirectional killing in mixtures of two cytotoxic T lymphocytes. Unidirectional polarization of cytoplasmic organelles and the membrane-associated cytoskeleton in the effector cell.

In mixtures of two CTL of the type a anti-b and b anti-c, only the latter is lysed; i.e., killing is unidirectional. Here, we show that two profound types of changes occur in the effector CTL but not in the target CTL upon formation of couples between them. One is that the microtubule organizing center (and presumably the Golgi apparatus that is invariably colocalized with it) is reoriented inside the effector CTL to face the bound target CTL. This unidirectional reorientation, it is proposed, serves to direct putative cytotoxic secretory components derived from the Golgi apparatus of the effector cell to the site of cell-cell binding. The second unidirectional change is in the membrane-associated cytoskeleton of the effector CTL in the area of target cell binding. The cytoskeletal protein talin, but not any of four other such proteins assayed, is highly concentrated at the contacting membrane of the effector CTL, while it is uniformly distributed over the entire membrane of the bound target CTL. This localized, massive cytoskeletal reorganization may reflect a mechanism to protect the membrane of the effector CTL from the effects of putative cytotoxic components secreted by the effector cell into the intercellular space between it and the target cell.

Animals↗

Persistence of vesicular stomatitis virus in cloned interleukin-2-dependent natural killer cell lines.

We have investigated virus-lymphocyte interactions by using cloned subpopulations of interleukin-2-dependent effector lymphocytes maintained in vitro. Cloned lines of H-2-restricted hapten- or virus-specific cytotoxic T lymphocytes (CTL) and alloantigen-specific CTL were resistant to productive infection by vesicular stomatitis virus (VSV). In contrast, cloned lines of natural killer (NK) cells were readily and persistently infected by VSV, a virus which is normally highly cytolytic. VSV-infected NK cells continued to proliferate, express viral surface antigen, and produce infectious virus. Furthermore, persistently infected NK cells showed no marked alteration of normal cellular morphology and continued to lyse NK-sensitive target cells albeit at a slightly but significantly reduced level. The persistence of VSV in NK cells did not appear to be caused by the generation of temperature-sensitive viral mutants, defective interfering particles, or interferon. Consequently, studies comparing the intracellular synthesis and maturation of VSV proteins in infected NK and mouse L cells were conducted. In contrast to L cells, in which host cell protein synthesis was essentially totally inhibited by infection, the infection of NK cells caused no marked diminution in the synthesis of host cell proteins. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of immunoprecipitates of viral proteins from infected cells showed that the maturation rate and size of VSV surface G glycoprotein were comparable in L cells and NK cells. Nucleocapsid (N) protein synthesis also appeared to be unaffected in NK cells. In contrast, the viral proteins NS and M appeared to be selectively degraded in NK cell extracts. Mixing experiments suggested that a protease in NK cells was responsible for the selective breakdown of VSV NS protein. Finally, VSV-infected NK cells were resistant to lysis by virus-specific CTL, suggesting that persistently infected NK cells may harbor virus and avoid cell-mediated immune destruction in an immunocompetent host.

Animals↗

Eradication of established human melanoma tumors in nude mice by antibody-directed effector cells.

The simultaneous injection of monoclonal antibody 9.2.27, directed against a chondroitin sulfate proteoglycan preferentially expressed on human melanoma cells, and 2 X 10(7) mononuclear splenocytes, eradicated established, progressively growing human melanoma tumors in nude mice. Neither splenocytes nor antibody alone achieved significant tumor regression. The cells responsible for tumor elimination are most likely natural killer (NK) cells: they are present in splenocytes of T cell-deficient nude mice, and cloned cells with NK activity are able to suppress tumor growth. Moreover, splenocytes treated with anti-asialo GM1 and complement or harvested from NK-deficient C57BL/6 beige mice did not cause tumor rejection. Furthermore, treatment of BALB/c nude mice just before injection with anti-asialo GM1 antiserum, which is known to eliminate NK activity in vivo, resulted in better tumor growth. In addition, evidence is presented that cells with NK activity are probably the effectors responsible for melanoma target cell lysis in vitro: Antibody-dependent and -independent cell-mediated lysis of M21 melanoma cells was suppressed when splenocytes were preincubated with complement and antibodies specific for cell surface antigens of NK cells, i.e., anti-asialo GM1, anti-Qa5, and anti-NK1.1. Moreover, splenocytes of C57BL/6 beige mice were not able to lyse M21 cells in vitro. These results strongly support the conclusion that cells with NK activity are indeed responsible for the antibody-dependent destruction of M21 melanoma cells in vivo and in vitro.

Animals↗

Bone marrow graft rejection as a function of antibody-directed natural killer cells.

There is conclusive evidence that acute bone marrow transplant rejection in lethally irradiated mice is caused by natural killer (NK) cells. The rejection of marrow allografts is exquisitely specific and is controlled by antigenic determinants encoded in or near the H-2 gene complex. The specificity of in vivo marrow graft rejection contrasts with the in vitro specificity pattern of NK cells in cytotoxicity assays. We therefore examined how NK cells cause H-2-specific marrow graft rejection in vivo. Several experimental approaches are presented that suggest that natural antibody, present in responder strains of mice, specifically directs NK cells in an antibody-dependent cytolytic and/or cytostatic reaction, resulting in marrow graft rejection. The following evidence for this mechanism is documented. The ability to reject a marrow graft can be passively transferred by serum from responder to allogeneic nonresponder mice and the specificity of rejection can be mapped within the H-2 region. Serum-induced marrow graft rejection is abrogated following depletion of immunoglobulin, and the serum of responder mice is able to induce a specific antibody-dependent cytotoxic reaction in vitro.

Animals↗

Adoptive transfer studies demonstrating the antiviral effect of natural killer cells in vivo.

We carried out adoptive transfer studies to determine the role of natural killer (NK) cells in resistance to murine cytomegalovirus (MCMV) and lymphocytic choriomeningitis virus (LCMV). We transferred leukocytes from adult mice into suckling mice 1 d before injecting them with virus. Resistance was measured by enhancement of survival and reduction of virus multiplication in the spleens of recipient mice. The phenotype of the cell population capable of mediating resistance to MCMV was that of a nylon wool-nonadherent, asialo GM1+, NK 1.2+, Ly-5+, Thy-1-, Ia-, low density lymphocyte; this is the phenotype of an NK cell. Cloned NK cells, but not cloned T cells, provided resistance to MCMV in suckling mice. Cloned NK cells also provided resistance to MCMV in irradiated adult mice, and antibody to asialo GM1, which depletes NK cell activity in vivo, enhanced the synthesis of MCMV in athymic nude mice. Neither adult leukocytes nor cloned NK cells influenced LCMV synthesis in suckling mice. We conclude that a general property of NK cells may be to provide natural resistance to virus infections, and that NK cells can protect mice from MCMV but not from LCMV.

Aging↗

Immunostimulation by retinoic acid.

Retinoids have been shown to inhibit tumour growth in several model systems. In this paper evidence that immune effectors are important for this effect is discussed. Injection of retinoic acid (RA) into mice before challenge with allogeneic or syngeneic tumour cells results in a strong increase in cell-mediated cytotoxicity specific for the respective tumour. This stimulation appears to be due to effects taking place before or during the induction phase rather than the effector phase of cell-mediated cytolysis. The effector cells responsible for cytotoxicity express the Thy 1 antigen, are H-2 specific and are therefore T killer cells. The induction of T cell-mediated cytotoxicity requires the participation of the lymphokine interleukin 2 (IL-2). The possibility was tested that RA directly or indirectly influences the production of IL-2 and thereby stimulates the induction of T killer cells. Results indeed show that RA-injected mice display an increased capacity to produce IL-2 upon stimulation of their splenocytes in a mixed lymphocyte reaction. It appears therefore that RA has an effect on T cells that are destined to produce IL-2 upon antigenic challenge. Since IL-2 plays a role not only in the induction of specific cytotoxic T cells but also in the induction of natural killer (NK) cells, RA was also tested in a model system in which NK cells appear to play an important protective role. Results showed that split-dose irradiated mice that lose their NK activity and subsequently develop leukaemia can be protected from leukaemogenesis either by reconstitution with NK cells or by injection with RA. The question of whether this effect is due to stimulation of immune effectors or is a direct effect on the preleukaemic cells is discussed.

Adjuvants, Immunologic↗

Cytotoxic granules from killer cells: specificity of granules and insertion of channels of defined size into target membranes.

The channel-forming polyperforins P1 and P2 are thought to be formed from the contents of dense core vesicles of cytolytic effector cells. To test this hypothesis, granules from various cytotoxic effector cells were assayed for cytolytic activity on nucleated or unnucleated targets. The results show that in general, granules from cytolytic effector cells are cytolytic, whereas granules from noncytotoxic cells are not. Cytotoxicity of granules is not specific, but there appears to be a preference in that nucleated targets are lysed better than are erythrocytes by granules from T killer or natural killer cells. Granules from CTLL-2, however, preferentially lyse erythrocyte targets. This cell line has been in culture for a long period of time and has lost its cytotoxicity. We tested whether granules from CTLL-2 caused formation of transmembrane pores in erythrocyte target membranes. We found that granule- and complement-induced lesions have similar pore sizes. They are big enough to allow the total release of alpha-bungarotoxin, an 8000 Mr polypeptide with dimensions of 4 X 2.5 nm. Larger molecules are released partially or not at all. Under acidic conditions (pH 5.4) granules do not permeabilize target membranes. This may suggest a pH-dependent control mechanism in the formation, insertion, or function of polyperforin channels, in addition to a previously recognized Ca2+-dependent mechanism. Permeabilization of lipid vesicles by granules was studied to explore what the molecular requirements for channel insertion into membranes may be. Release of alpha-bungarotoxin induced by granules was observed in liposomes made of soybean lipid with or without cholesterol, suggesting that no membrane component other than lipid is required for the insertion of polyperforins, and that the action of polyperforins does not require other mechanisms in the target cell. When pure lecithin from soybean and egg, or synthetic phosphatidylcholines were used, slower release or no release of macromolecules was observed. We suggest that some kind of lipid specificity is required for perforin action. This may be related to the hydrophobic region of the lipid bilayer rather than to the polar portion, because different lecithins with varying fatty acid composition gave similar results.

Animals↗

The reorientation of the Golgi apparatus and the microtubule-organizing center in the cytotoxic effector cell is a prerequisite in the lysis of bound target cells.

This investigation is concerned with the detailed mechanisms of cytotoxicity, and in particular, with early cell surface and intracellular events that occur upon the binding of a cytotoxic effector cell to its susceptible target. In earlier studies, we have shown by immunofluorescence microscopy that when cloned natural killer (NK) and cytolytic T lymphocyte (CTL) cells bind to susceptible target cells, a rapid and coordinate reorientation of the perinuclear Golgi apparatus and the microtubule-organizing center (MTOC) occurs inside the effector cell so that the two organelles face the bound target. It was proposed that the purpose served by this reorientation is to direct Golgi-derived secretory vesicles, containing one or more cytotoxic components, to the area of target cell binding. In order to establish more firmly that this reorientation of the two organelles is an essential early event in cytotoxicity, we have performed three different types of experiments. 1) Upon binding cloned effector cells to susceptible targets in the presence of Mg+2 but absence of Ca+2, conditions in which no killing occurs, we found that no reorientation of the MTOC in the effector cell is induced; however, the addition of CA+2 to these cell couples results in a rapid MTOC reorientation. 2) With a lysis-defective subclone derived from a cytolytic NK clone, binding to target cells did not induce an MTOC reorientation in the defective killer cell. 3) In multitarget conjugates formed with single CTL, the MTOC in the CTL was oriented to face that one target cell which was in the process of lysis at the time. These results, together with our earlier findings, strongly indicate that a Golgi/MTOC reorientation inside the target-bound effector cell is a pre-requisite for the effective lysis of the target. They also reveal the existence, previously unrecognized, of a specific signaling mechanism from the viable target cell to the effector cell, which must be involved in the triggering of this Golgi/MTOC reorientation. These conclusions are consistent with the proposal that a polar cytotoxic secretory mechanism is responsible for target cell lysis.

Animals↗

T killer cells play a role in allogeneic bone marrow graft rejection but not in hybrid resistance.

Results of recent experiments have provided compelling evidence supporting the hypothesis that the acute rejection of bone marrow transplants by allogeneic and semiallogeneic recipients is principally due to the action of natural killer (NK) cells. The observed specificity of graft rejection is likely induced by target-specific antibody that guides the NK cells in an antibody-dependent cytolytic reaction resulting in the elimination of the graft. The sole involvement of NK cells in marrow graft rejection, however, is contradicted by several observations that point to the environment of specific T cells. Results presented in this paper demonstrate that in allogeneic marrow graft rejection models, T killer cells are capable of causing graft rejection provided a prior sensitization phase is allowed. Thus, mice not able to reject marrow grafts in a primary response via their NK cells will do so in a primed secondary response via their T cells. Rejection is specific in that only marrow grafts H-2 identical to the sensitizing marrow graft are rejected. Sensitization for NK cell independent marrow graft rejection can be accomplished by prior priming with allogeneic tumor cells or by injection of cloned T killer cells. In contrast to bone marrow allograft rejection, the hybrid resistance model in which F1 hybrid mice reject parental marrow grafts does not appear to induce T killer cells in vivo. Neither marrow grafts nor tumor cells prime F1 hybrids for a second-set parental graft rejection. Moreover, F1 hybrid antiparental T killer cells induced in vitro and adoptively transferred in vivo fail to transfer hybrid resistance. Therefore, there appear to be potent mechanisms acting in vivo that suppress the action or induction of F1 hybrid T killer cells specific to parental antigens.

Animals↗

NK recognition of target structures: is the transferrin receptor the NK target structure?

That the transferrin receptor acts as a target antigen for human NK cells has previously been suggested. In this study we used two models to examine the hypothesis that the transferrin receptor is recognized by NK cells. In the first model, we employed mouse cloned NK cells in conjunction with the species-specific monoclonal antibody R17 217, which binds to the murine transferrin receptor. We show that there is no correlation between the amount of transferrin receptor expressed on targets and the susceptibility of these targets to NK lysis or NK binding in cold target competition assays. In the second model, we used human NK cells and transferrin receptor-positive transformants as targets. These transformants were derived from mouse L cells transfected with human DNA and selected for the presence of human transferrin receptor. Results show that, in contrast to the mouse system, there is a correlation between the expression of the human transferrin receptor on targets and the ability of these targets to competitively inhibit the lysis of K562 by NK cells. However, because inhibition is not complete, other cell surface antigens probably play a role in human NK-target interactions.

Animals↗

Expression of IgE receptors and histamine in cloned natural killer cell lines.

Natural killer (NK) activity is mediated by large granulated lymphocytes (LGL). Recently, the relationship of NK cells to mast cells and basophils has been suggested. We therefore examined three distinct interleukin 2-dependent cloned cell lines capable of mediating NK lysis. Virtually all the cells of each line contained membrane-bound granules. Interestingly, ultrastructural studies demonstrated that the granules in each cell line were morphologically distinct and thus heterogeneous. All three cloned, granulated NK cell lines were found to variably express low numbers (less than or equal to 1.3 X 10(4)) of low affinity plasma membrane IgE receptors (Fc epsilon R). In contrast to mast cells and basophils, however, none were found to express high numbers of high affinity Fc epsilon R. In addition, none of the three NK cell lines were found to contain histaminase-sensitive histamine. Our results suggest that NK cells are not related to mast cells or basophils.

Animals↗