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C R Lyons

Publications and source records attributed to C R Lyons.

31 records · Page 2Linked to original sources

Mononuclear cells in human lung parenchyma. Characterization of a potent accessory cell not obtained by bronchoalveolar lavage.

Human alveolar macrophages from bronchoalveolar lavage are usually poor accessory cells for antigen-induced T-lymphocyte proliferation and poor stimulators of allogeneic mixed leukocyte reactions (MLR) when compared to peripheral blood monocytes. In contrast, cells harvested from minced lungs are good stimulators of a MLR. We have characterized the accessory cells obtained after enzymatic digestion of human lung tissue. Pulmonary mononuclear cells were separated from the dissociated lung cell mixture on Ficoll-Hypaque. Loosely adherent cells (LAM) were obtained after an overnight incubation on plastic culture dishes of initially adherent mononuclear cells. LAM were significantly more effective than were pulmonary mononuclear cells (p less than 0.05), firmly adherent cells (p less than 0.05), alveolar macrophages obtained by bronchoalveolar lavage (p less than 0.05), or monocytes (p less than 0.05) in stimulating allogeneic resting T-cells. Addition of indomethacin and catalase markedly improved T-cell proliferation induced by LAM. Enrichment for Fc receptor negative or for nonphagocytic cells further enhanced the MLR-stimulating capacity of LAM. Phase-contrast studies demonstrated an enrichment in cells compatible with dendritic cells in LAM as compared to firmly adherent cells. We conclude that there are potent accessory cells in human lung that are loosely adherent, Fc receptor negative, and poorly phagocytic, and thus are dissimilar from classic macrophages. We hypothesize that cells similar to dendritic cells might play a role in the initiation of immune responses in lung parenchyma.

Antibodies, Monoclonal↗

Inability of human alveolar macrophages to stimulate resting T cells correlates with decreased antigen-specific T cell-macrophage binding.

Alveolar macrophages (AM) from the majority of human volunteers are defective antigen presenting cells (APC) in T cell proliferation assays despite the display by the cells of HLA-D region antigens. We have confirmed that AM secrete relatively little interleukin 1 (IL 1), but addition of exogenous IL 1 did not improve the capacity of AM to initiate antigen-induced T cell proliferation. Thus, the presence of HLA-D region antigens and IL 1 is not sufficient to enable an accessory cell to act as an APC. We developed a T cell-accessory cell binding assay to investigate early events in T cell activation. AM demonstrated a diminished capacity as compared with monocytes to bind antigen-specific T cell clones. Nevertheless, AM often induced proliferation of T cell clones as effectively as monocytes, indicating that antigen display was intact. The inefficiency of AM in bind T cell clones correlated with their reduced capacity to induce resting T cells to express IL 2 receptors, secrete IL 2, and proliferate in response to antigen. Indirect immunofluorescence established that similar percentages of AM and monocytes expressed LFA molecules, but the density of the molecules was greater on monocytes than AM. A role for LFA antigens in the physical binding of T cells to monocytes was demonstrated by blocking antigen-specific binding with a monoclonal antibody to LFA-1 antigen. LFA-1 antibody also blocked the low levels of specific binding between AM and T cell clones, indicating that LFA-1-ligand interactions were operative between these two cell types. These studies indicate that there are critical cell membrane characteristics that promote binding of T cells to APC in addition to T cell receptor-antigen interactions. This combination of nonspecific and specific interactions leads to avid T cell-APC binding that may be essential for activation of resting T cells. Furthermore, we postulate that the failure to AM to act as effective APC results from an inability to bind T cells efficiently.

Adult↗

Human pulmonary macrophages. Functional comparison of cells obtained from whole lung and by bronchoalveolar lavage.

Previous studies have demonstrated that pulmonary macrophages (PM) recovered from bronchoalveolar lavage (BAL) are relatively poor accessory cells for antigen-induced T-lymphocyte proliferation. These studies have suggested that the immune function of macrophages obtained by BAL is representative of the majority of PM. We compared macrophages obtained by BAL with PM from whole lung minces (MIN) for their ability to stimulate T-lymphocyte proliferation. Both populations of PM had similar expression of HLA-DR antigen and were of comparable maturity as determined by staining for MO2 antigen. Production of interleukin 1 by both groups of PM was similar and was significantly less than that produced by monocytes (p less than 0.05). Both populations of PM functioned poorly as antigen-presenting cells when compared with monocytes (p less than 0.05). However, PM from MIN stimulated a mixed leukocyte reaction significantly more (p less than 0.05) than did PM from BAL. Our data suggest that whereas BAL obtains a population of PM with an immunologic function that is largely similar to PM obtained from whole lung, some differences in function may exist.

Antigen-Presenting Cells↗

Human alveolar macrophages: HLA-DR-positive macrophages that are poor stimulators of a primary mixed leukocyte reaction.

Previous studies demonstrated that alveolar macrophages (AM) from most normal human volunteers failed to stimulate the antigen-induced proliferation of peripheral blood T lymphocytes although greater than 90% of AM expressed HLA-DR antigens. The current studies establish that AM also fail to induce allogeneic peripheral blood mononuclear cells to proliferate in a mixed leukocyte reaction (MLR). Suppressive activity by AM was not an explanation for their failure to induce an MLR. Indirect immunofluorescence established the presence of both HLA-DR and DQ antigens on the majority of AM and the persistence of these antigens on cells in culture for up to 6 days, the period of time required to observe a maximal MLR. Metabolic labeling experiments also demonstrated that HLA-DR antigens were synthesized by AM. It was recently reported that AM secrete relatively small amounts of IL 1, an important ancillary signal provided by accessory cells to enhance the stimulation of lymphocyte proliferation. However, addition of optimal concentrations of IL 1 to cultures containing AM failed to enhance the MLR. Thus, there is at least one additional, but as yet undefined, requirement for an accessory cell to induce an optimal MLR besides the display of HLA-D region antigens and the secretion of IL 1. In contrast, AM were effective in specifically stimulating proliferation of alloreactive T cell lines, suggesting that at least some cell lines do not require this nonspecific undefined second signal. We speculate that although AM may not initiate primary immune responses in the lung, they may be important in maintaining immune-mediated inflammatory responses by specifically restimulating already activated T cells.

Adult↗

Binding constants of isolated NGF-receptors from different species.

It is known that NGF-responsive cells bind NGF at cell surface receptors in a specific and saturable fashion and there are two separate kinds of receptor-ligand binding interactions as judged by Rosenthal analyses. Following isolation of nerve growth factor receptors from embryonic chicken sensory ganglia, rat pheochromocytoma cells and human neuroblastoma cells, equilibrium binding studies were carried out and two different equilibrium binding constants similar to that described for whole cells were determined. This evidence is consistent with the hypothesis that there are two different receptors for NGF which have been conserved.

Adrenal Gland Neoplasms↗

Persistence of influenza as an immunogen in pulmonary antigen-presenting cells.

Influenza antigens inoculated into the lung induce local immune responses. It has been proposed that this induction might be partly regulated by local antigen-presenting cells. The purpose of the current study was to inoculate heat-inactivated influenza virus into the tracheae of guinea pigs and determine the quantity of antigens that became cell-associated. Second, we determined how long antigen-presenting bronchoalveolar cells that had taken up virus in vivo retained their ability to specifically stimulate virus-immune T lymphocytes. Radioiodinated heat-inactivated influenza virus was inoculated into the tracheae of guinea pigs. The animals were killed from 30 min to 14 days after intratracheal inoculation, and radioactivity was determined in cells isolated from lung tissue. At least one-third of the radioactivity in the lungs was cell-associated from 1 to 14 days post-inoculation. In separate studies, heat-inactivated virus was inoculated into the airways of guinea pigs, and animals were killed at various times thereafter. Bronchoalveolar cells from these animals were compared with those from uninoculated controls in their ability to specifically stimulate virus-immune T cells to proliferate in vitro. Bronchoalveolar cells from virus-inoculated animals specifically stimulated T lymphocytes for up to 7 days after virus inoculation. These studies suggest that immunogenic virus persists in the lung within antigen-presenting cells for at least 1 week and possibly for up to 2 weeks. The persisting immunogenic stimulus after the termination of viral infections might be critical in ensuring the development of a local protective immune response.

Animals↗

Alveolar macrophages in pulmonary immune responses. I. Role in the initiation of primary immune responses and in the selective recruitment of T lymphocytes to the lung.

Antigen inoculated intratracheally (IT) into animals can induce primary immune responses and selectively recruit specific T cells to the lung. In the current study, the role of alveolar macrophages (AM) in these two responses was investigated. Antigen-pulsed bronchoalveolar cells (BAC) inoculated IT into guinea pigs generated a population of immune T cells that proliferated in vitro on reexposure to antigen-pulsed macrophages (Mø). The possibility that antigen-pulsed donor BAC shed antigen that was subsequently processed and presented by host Mø was ruled out by genetic experiments. Thus, peritoneal exudate lymphocytes (PEL) from (2 X 13)F1 guinea pigs primed with antigen-pulsed BAC from strain 2 animals responded preferentially to antigen-pulsed strain 2 Mø rather than to antigen-pulsed strain 13 Mø. In a second set of studies, antigen-pulsed BAC inoculated IT into guinea pigs selectively recruited antigen-specific T cells to the lung. Genetic experiments verified that inoculated BAC were the source of the antigen-presenting cells responsible for selective recruitment. Thus, antigen-pulsed strain 2 BAC inoculated IT recruited a greater proportion of (2 X 13)F1 T cells that recognized antigen in the context of strain 2 Mø than F1 T cells that recognized antigen on strain 13 Mø. Taken together, these studies suggest that AM contribute to the regulation of pulmonary immunity by both inducing T lymphocyte immunity and selectively recruiting specific T cells to the lung.

Animals↗

The antigen-induced selective recruitment of specific T lymphocytes to the lung.

The purpose of the present studies was to investigate the mechanisms by which specific T lymphocytes accumulate in the lung. After the intratracheal (IT) inoculation of influenza virus into guinea pigs, the detection of specific T lymphocytes in the lung coincided with the development of immunity in both hilar nodes and systemic lymphoid tissue. Animals immunized in the footpads with virus failed to develop immune responses in the lung unless rechallenged IT with immunogen. In adoptive transfer experiments, IT inoculation of influenza into nonimmune guinea pigs, followed immediately by the i.v. injection of a mixture of 3H-thymidine-labeled syngeneic T lymphocytes specific for influenza virus and 14C-thymidine-labeled syngeneic T lymphocytes specific for an irrelevant antigen resulted in the selective accumulation of the virus-specific T lymphocytes in the lung. Taken together, these studies indicate that the selective recruitment by antigen of circulating immune cells is one of the mechanisms by which specific T cells accumulate in the lung.

Animals↗

Biochemical characterization of Ia alloantigens in guinea pigs. I. Synthesis of Ia antigens by subsets enriched for B cells, T cells, or macrophages.

Peritoneal exudate cells from immune guinea pigs consist primarily of T lymphocytes (PEL) and M phi. After selection of PEL from animals immunized with ovalbumin by culture on specific antigen-pulsed syngeneic M phi, recovered T cells (selected PEL) are 75 to 95% Ia+ by both cytotoxicity and immunofluorescent analysis on the FACS using alloantisera to Ia from guinea pigs or mice. The subunit structure of the Ia molecules on T cells is similar to that of Ia molecules obtained from B cells, as determined by radiolabeling, immunoprecipitation, and analysis of gels. Incorporation of labeled amino acids into Ia by selected PEL was shown to be due to T cells because of the lack of effect of depletion of Ig+ cells, the elimination of incorporation with a monoclonal anti-lymphocyte antibody, and the negligible increase in radioactive Ia after addition of large numbers of peritoneal exudate M phi. Furthermore, when F1 (2 x 3) PEL are selected on parental M phi, the selected PEL express both parental (2 and 13) Ia specificities, which suggests that the Ia molecules are not adsorbed by T cells after their release by M phi. Evidence that synthesis by splenocytes is due to B cells was obtained by the results of deletion experiments with alpha Ig and C. Similarly, synthesis of Ia by populations of pulmonary alveolar M phi, which contain greater than 98% M phi as judged by morphology, adherence, and latex ingestion, was demonstrated to be due to M phi because of the lack of effect of removing T and B cells.

Animals↗

Biochemical characterization of Ia alloantigens in guinea pigs. II. Comparative peptide mapping of Ia antigens from B cells, T cells, and macrophages.

Radioactive Ia.4 molecules were prepared from 3H- or 14C-labeled splenocytes, selected PEL, or bronchoalveolar macrophages (M phi). Studies in the accompanying paper indicated that incorporation into Ia.4 in these 3 populations is due to B cells, T cells, and macrophages, respectively. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) was used to isolate the 58,000 m.w. form of Ia.4. The eluted molecule was then reduced, and the resultant alpha and beta subunits were isolated by a second separation on SDS-PAGE. Alpha (or beta) chains from 1 population labeled with 3H-amino acids was mixed with alpha (or beta) chains obtained from a population representing a different cell type that was labeled with 14C-amino acids and the mixture was digested with trypsin. Double-label (3H/14C) comparative peptide mapping was performed using high-pressure liquid chromatography to separate the peptides. Eighteen to 20 peaks of radioactivity were resolved from alpha chains, and 12 to 15 from beta chains. No reproducible differences were observed when comparing alpha or beta chains of T cells and macrophages, or those of B cells and macrophages. These results indicate that the primary structure of Ia.4 molecules is identical on the 3 cell types in question. The implications of having a T cell bearing the same Ia that it recognized on a macrophage in conjunction with antigen is discussed.

Amino Acids↗

Antigen presentation by guinea pig alveolar macrophages.

The role of alveolar macrophages (M phi) in the induction of immune responses within the lung was investigated. Guinea pig alveolar M phi obtained from bronchoalveolar cells (BAC) were found to function as well as peritoneal exudate M phi in supporting proliferation of purified lymph node lymphocytes (LNL) induced by both soluble antigens and mitogen (Con A). Several lines of evidence indicate that the alveolar M phi is an effective antigen-presenting cell. 1) Washed alveolar M phi, previously "pulsed" with antigen, replaced both soluble antigen and BAC in the stimulation of immune LNL. 2) The interaction of alveolar M phi, over 80% of which were Ia positive, with lymphocytes was genetically restricted, i.e., only antigen-pulsed alveolar M phi that shared I region-encoded antigens with the antigen-specific T lymphocytes stimulated their proliferation. Furthermore, removal of Ia-positive alveolar M phi abrogated this response. 3) Antigen-pulsed alveolar M phi specifically bound immune T lymphocytes. In contrast, no evidence was obtained for immunosuppression by alveolar M phi. Thus, alveolar M phi failed to suppress specific LNL proliferation even at ratios of alveolar M phi to LNL of greater than 20:1, ratios that often exist locally within the lung. The possible role of antigen-bearing alveolar M phi in inducing local immunity and also in focusing a systemic response are discussed.

Animals↗

Specific binding of T lymphocytes to macrophages. V. The role of Ia antigens on Mphi in the binding.

The effect of anti-Ia alloantiserum on the capacity of selected peritoneal exudate lymphocytes (selected PEL) to bind to antigen-pulsed F1 (responder x nonresponder) macrophages was investigated. With the use of selected PEL for antigens under Ir gene control, it was shown that anti-Ia serum to the responder haplotype blocked adherence of selected PEL to antigen-pulsed macrophages whereas anti-Ia serum to the nonresponder haplotype did not. The target cell of the anti-Ia alloantiserum appeared to be the macrophage because anti-13 Ia in contrast to anti-2 Ia did not inhibit binding of F1 (2 x 13) DNP-GL selected PEL to DNP-GL pulsed strain-2 Mphi (responder strain). Taken together with previous experiments that indicate that an antibody to the native protein antigen employed is unable to block specific binding, the present results suggest that T cells may recognize fragments of exogenous antigen in association with Ia molecules.

Animals↗