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J G Frelinger

Publications and source records attributed to J G Frelinger.

At least 37 records · Page 2Linked to original sources

Anti-CD43 inhibition of T cell homing.

The homing of lymphocytes from the blood is controlled by specialized processes of lymphocyte-endothelial cell interaction. Interference with these processes offers the potential to manipulate lymphocyte traffic, and thus to modulate normal and pathologic immune and inflammatory responses. We selected antilymphocyte monoclonal antibodies (mAbs) for inhibition of lymphocyte binding in vitro to lymph node high endothelial venules (HEV), specialized vessels that support lymphocyte recruitment into lymph nodes. mAb L11 blocks T cell binding to lymph node and Peyer's patch HEV and inhibits T cell extravasation from the blood into organized secondary lymphoid tissues. In contrast, L11 has no effect on lymphocyte binding to purified vascular ligands for L-selectin, alpha4beta7, or LFA-1, suggesting that it inhibits by a novel mechanism. The L11 antigen is CD43, a sialomucin implicated in vitro in regulation of lymphocyte activation, whose expression is often dysregulated in the Wiskott-Aldrich syndrome. CD43 represents a novel target for experimental and therapeutic manipulation of lymphocyte traffic and may help regulate T cell distribution in vivo.

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Expression of mouse CD43 in the B cell lineage of transgenic mice causes impaired immune responses to T-independent antigens.

CD43 (leukosialin), a sialylated glycoprotein expressed on the surface of most hematopoietic cells, has been implicated in cell adhesion and signaling. However, its precise physiological function remains unclear. We used mouse CD43 (mCD43)-immunoglobulin enhancer-transgenic (TG) mice to study the role of mCD43 in vivo. Previous work revealed that mCD43 expression on mature B cells in these mice resulted in immunodeficiency to T-dependent (TD) antigens (Ag), possibly by impairing B-T cell interactions. In the present study we have immunized the TG mice with the T-independent (TI) Ag fluorescein-(Fl) lipopolysaccharide (LPS) (TI type 1 Ag) and Fl-Ficoll (TI type 2 Ag). Surprisingly, the mCD43-Ig enhancer expressing mice were impaired in their ability to mount humoral responses to both Fl-LPS and Fl-Ficoll, and had decreased numbers of cells responding to Ag in vivo. Flow cytometric analysis was performed on peritoneal B-1 cells, a population which often plays a major role in humoral responses to TI Ag such as bacterial Ag. This analysis revealed similar B220, IgM and CD5 expression patterns for the TG and nontransgenic (NTG) B-1 cells. In addition, purified peritoneal B-1 cells from TG and NTG mice were able to respond to LPS. Stimulation of splenic B cells in vitro with Fl-LPS and Fl-Ficoll revealed that, in contrast to NTG B cell responses, TG B cell responses could not be enhanced by co-culture with T cells. However, soluble T cell factor enhancement of the TG B cell responses was normal. These data suggest that the mCD43 expression on B cells may inhibit cell interactions that are important for enhanced TI Ag responses. The anti-adhesive forces of mucins in general may thus be critical in regulating both TD and TI humoral responses.

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Disregulated expression of CD43 (leukosialin, sialophorin) in the B cell lineage leads to immunodeficiency.

Leukosialin (CD43 or sialophorin) is a cell surface sialoglycoprotein implicated in cell adhesion and proliferation whose tightly regulated expression in B lymphocytes is likely important for their normal development and/or function. To examine the physiologic role of mouse CD43 (mCD43) in vivo, we exploited transgenic (TG) mice whose developmental expression of mCD43 was extended during B cell differentiation so that mCD43 was now expressed on peripheral B cells. Despite having increased B cells, localization of lymphocytes in the TG spleens appeared normal by immunocytochemistry with anti-CD4, anti-CD8, and anti-B220 mAbs. However, the numbers of splenic germinal centers and the resting sera Ig levels were decreased in the TG mice compared with littermate controls. TG mice had decreased humoral responses to the T-dependent Ags keyhole limpet hemocyanin and OVA, as well as reduced Ag-specific B cell numbers. In contrast, in vitro LPS stimulation of purified TG or control B cells resulted in similar proliferation and IgM responses. Thus, the alteration of B cell mCD43 expression that resulted in profound immunodeficiency in vivo was not due to absolute defects in B cell development or Ab production. However, TG B cells had a decreased ability to homotypically aggregate and to present Ag to the T cell hybridoma B3Z. These data suggest that the immunodeficiency seen in vivo is due to the anti-adhesive forces of mCD43 preventing normal T-B cell interaction. This likely reflects a general property of mucins in regulating cell interactions.

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Interleukin 3 enhances cytotoxic T lymphocyte development and class I major histocompatibility complex "re-presentation" of exogenous antigen by tumor-infiltrating antigen-presenting cells.

We show that interleukin 3 (IL-3) enhances the generation of tumor-specific cytotoxic T lymphocytes (CTLs) through the stimulation of host antigen-presenting cells (APCs). The BALB/c (H-2d) spontaneous lung carcinoma line 1 was modified by gene transfection to express ovalbumin as a nominal "tumor antigen" and to secrete IL-3, a cytokine enhancing myeloid development. IL-3-transfected tumor cells are less tumorigenic than the parental cell line, and tumor-infiltrating lymphocytes isolated from these tumors contain increased numbers of tumor-specific CTLs. By using B3Z86/90.14 (B3Z), a unique T-cell hybridoma system restricted to ovalbumin/H-2b and implanting the tumors in (BALB/c x C57BL/6)F1 (H-2d/b) mice, we demonstrate that the IL-3-transfected tumors contain an increased number of a rare population of host cells that can process and "re-present" tumor antigen to CTLs. Electron microscopy allowed direct visualization of these host APCs, and these studies, along with surface marker phenotyping, indicate that these APCs are macrophage-like. The identification of these cells and their enhancement by IL-3 offers a new opportunity for tumor immunotherapy.

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Expression of human prostate-specific antigen (PSA) in a mouse tumor cell line reduces tumorigenicity and elicits PSA-specific cytotoxic T lymphocytes.

Human prostate-specific antigen (PSA) has a highly restricted tissue distribution. Its expression is essentially limited to the epithelial cells of the prostate gland. Moreover, it continues to be synthesized by prostate carcinoma cells. This makes PSA an attractive candidate for use as a target antigen in the immunotherapy of prostate cancer. As a first step in characterizing the specific immune response to PSA and its potential use as a tumor-rejection antigen, we have incorporated PSA into a well-established mouse tumor model. Line 1, a mouse lung carcinoma, and P815, a mouse mastocytoma, have been transfected with the cDNA for human PSA. Immunization with a PSA-expressing tumor cell line demonstrated a memory response to PSA which protected against subsequent challenge with PSA-expressing, but not wild-type, tumors. Tumor-infiltrating lymphocytes could be isolated from PSA-expressing tumors grown in naive hosts and were specifically cytotoxic against a syngeneic cell line that expressed PSA. Immunization with tumor cells resulted in the generation of primary and memory cytotoxic T lymphocytes (CTL) specific for PSA. The isolation of PSA-specific CTL clones from immunized animals further demonstrated that PSA can serve as a target antigen for antitumor CTL. The immunogenicity studies carried out in this mouse tumor model provide a rationale for the design of methods to elicit PSA-specific cell-mediated immunity in humans.

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Analysis of the effect of cytokines (interleukins 2, 3, 4, and 6, granulocyte-monocyte colony-stimulating factor, and interferon-gamma) on generation of primary cytotoxic T lymphocytes against a weakly immunogenic tumor.

We have investigated the role of cytokines (IL-2, IL-3, IL-4, IL-6, IFN-gamma, and GM-CSF) in the generation of primary cytotoxic T lymphocytes (CTL), within a single tumor system. The murine carcinoma line 1 was transfected with expression vectors with cDNA for these cytokines. Line 1 expresses low levels of class I MHC molecules, but can be induced with dimethyl sulfoxide or IFN-gamma to express high levels of class I. Class I low line 1 cells are not susceptible to CTL lysis, while class I high line 1 are lysed by CTL, which allows us to assay for CTL activity. To isolate primary CTL, tumor-infiltrating lymphocytes were isolated from cytokine-expressing or control tumors, growing in vivo. Most cytokines stimulated nonspecific killers, but IL-2 and IL-3 stimulated primary CTL. While IFN-gamma alone did not generate primary CTL, coexpression of IFN-gamma with IL-2 resulted in CTL generation. This is the first comparison of the effects of a series of cytokines on primary CTL development, and has important implications for vaccine development and immunotherapy.

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B7-1 enhances natural killer cell-mediated cytotoxicity and inhibits tumor growth of a poorly immunogenic murine carcinoma.

The B7-1 molecule expressed on antigen presenting cells is an important costimulatory molecule for T cell activation. It has been demonstrated that murine B7-1 can enhance host immunity and lead to tumor rejection via its costimulatory function. Here, we investigate how transfection of B7-1 into line 1, a poorly immunogenic murine lung carcinoma, affects the generation and function of different immune effector cells. Line 1 cells expressing B7-1 form tumors that grow at a slower rate than the parental line 1. Our studies have shown that tumor infiltrating lymphocytes present within the B7-1 expressing tumors are primarily composed of nonspecific killer cells with no specific cytotoxic T cells present. To determine if increased nonspecific killer cells could inhibit the tumor growth of line 1 in the presence of B7-1, we examined the cytotoxicity of natural killer (NK) cells and lymphokine-activated killer (LAK) cells on the B7-1-transfected line 1 and the parental line 1. We found that B7-1 augments the NK- but not LAK-mediated killing against line 1 as measured in an in vitro 51Cr-release cytotoxicity assay. This enhancement could be blocked by CTLA-4 Ig. In vivo depletion of NK cells led to growth of the B7-1-transfected line 1 at the same rate as the parental line 1. These results suggest that in addition to its costimulatory role for T cell activation B7-1 could be an accessory molecule that intensifies NK-mediated cytotoxicity. This novel finding may provide a mechanism for the effect of B7-1 on tumors of low immunogenicity.

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Synergistic effects of co-expression of the TH1 cytokines IL-2 and IFN-gamma on generation of murine tumor-reactive cytotoxic cells.

While the effect of cytokines on the generation of tumor-reactive cytotoxic cells has been a topic of active investigation, the effect of physiological cytokine combinations has not been determined. We have investigated the effect of co-expression of IL-2 and IFN-gamma on the generation of cytotoxic cells against the murine line 1 tumor in vivo. These cytokines were selected because they are normally produced in concert by a subset of T-helper cells called T-helper 1 (Th1). We transfected the line 1 murine carcinoma with cDNA for IL-2 and IFN-gamma, alone or combined. IFN-gamma alone does not elicit rejection of the transfectant, but IL-2 increases the tumorigenic dose by 10,000-fold above the parental cells. Co-expression of IFN-gamma and IL-2 increases this rejection to at least 100,000-fold above parental line 1. Unlike IL-2 transfectants, tumor cells expressing both IFN-gamma and IL-2 can also elicit rejection of admixed parental tumor cells. Finally, the IFN-gamma/IL-2 transfectants are more effective at generating memory cells that are cytolytic for the parental tumor. Our results show that synergistic interactions of Th1 cytokines can remarkably enhance the cytotoxic response to tumors.

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Disregulation of leukosialin (CD43, Ly48, sialophorin) expression in the B-cell lineage of transgenic mice increases splenic B-cell number and survival.

Leukosialin (also known as Ly48, CD43, and sialophorin) is a major cell surface sialoglycoprotein found on a variety of hematopoietically derived cells. The precise function of this molecule is poorly understood but it has been implicated in cell proliferation and intercellular adhesion. We developed a transgenic mouse model to assess leukosialin's function in vivo. Our approach was to alter mouse CD43 (mCD43) expression in the B-cell lineage where it is tightly regulated, by expressing it in peripheral B cells where it is normally absent. To drive expression of leukosialin in mature B cells, the immunoglobulin heavy chain enhancer was fused to the mCD43 gene. mCD43-immunoglobulin heavy chain enhancer transgenic mice display splenomegaly due to increased numbers of B cells. Transgenic B cells show a striking increase in their ability to survive in vitro compared to B cells from nontransgenic control mice. This prolonged survival is reflected in a decreased susceptibility to apoptosis. These observations suggest that mCD43 plays an important role in the regulation of B-cell survival. The alteration of the temporal expression, or "disregulation," of a gene in transgenic mice provides a general strategy for elucidating the in vivo role of other molecules involved in cell signaling and adhesion.

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Transfection of transforming growth factor-beta producing tumor EMT6 with interleukin-2 elicits tumor rejection and tumor reactive cytotoxic T-lymphocytes.

One mechanism by which potentially immunogenic tumors evade the immune response is production of immunosuppressive factors. The murine mammary sarcoma EMT6 has previously been demonstrated to inhibit the proliferation of B-cells, suggesting that this tumor produces immunosuppressive factors. Here, we show that supernatant from EMT6 inhibits the development of cytotoxic T-lymphocytes (CTLs) and that this inhibition can be reversed by addition of recombinant interleukin (IL)-2. Furthermore, we show that EMT6 produces high levels of the immunosuppressant factor transforming growth factor (TGF)-beta. To determine if the T-cell growth factor IL-2 within the tumor microenvironment could reverse the immunosuppressive effect of EMT6, we transfected EMT6 with an expression vector containing the cDNA for murine IL-2 under the control of the beta-actin promoter. These transfectants produce significant levels of IL-2 (26 U/ml). EMT6/IL-2 is rejected by mice at 100-fold higher challenge than are parental cells or control transfectants (neomycin resistance only). Thy-1-expressing cells purified from EMT6/IL-2 tumors show greater cytotoxicity against the parental EMT6 cells than do those from the control transfectant. Thus, IL-2 can reverse the effects of TGF-beta on development and/or proliferation of CTL reactive with EMT6, allowing the establishment of mature effectors in vivo. This has significant implications for the development of CTL and immunotherapy for immunosuppressive tumors.

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Interleukin 3 enhances development of tumor-reactive cytotoxic cells by a CD4-dependent mechanism.

We investigated the effects that mouse interleukin 3 (IL-3), in comparison to mouse IL-2, has on the generation of cytotoxic effectors capable of killing line 1 tumor cells. These potent immunological mediators were delivered locally using gene transfection, rather than systemically, to the tumor site. We created line 1 transfectants that express high levels of IL-3 (3750 units/ml) or IL-2 (200 units/ml) by driving transcription from the beta-actin promoter. These levels of expression significantly enhanced tumor rejection in syngeneic mice. Tumor-infiltrating lymphocytes purified from IL-3 or IL-2 transfected tumors showed a dramatically enhanced cytotoxic response to parental line 1 targets. Also, IL-2, but not IL-3, expression enhanced the nonspecific lysis of YAC-1 cells. In vivo depletion of CD8+ cells with monoclonal antibody 2.43 abrogated the generation of cytotoxic effectors in both cases. Interestingly, depletion of CD4+ cells with monoclonal antibody GK1.5 abrogated the IL-3-mediated cytotoxic response but not the IL-2-mediated response. In vivo depletion of CD4+ or CD8+ cells abrogated the effect IL-3 had on reducing tumorigenicity. Reverse polymerase chain reaction analysis demonstrates that IL-3 transfected tumors, when compared to untransfected tumors, express increased levels of IL-2 and IL-4 mRNA. These results strongly suggest that IL-3, unlike IL-2, works to generate cytotoxic effectors by a mechanism that requires CD4+ cells.

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Differential epitope expression of Ly-48 (mouse leukosialin).

Ly-48 is a major sialoglycoprotein expressed on the surface of a variety of mouse hematopoietic cells that exhibits many characteristic isoforms and may function in signal transduction and cell adhesion. Ly-48 is recognized by the 3E8-specific monoclonal antibody (mAb) and it has been suggested that it is the same antigen recognized by another mAb known as S7. In this report, we demonstrate definitively by transfection of a Ly-48 cDNA that S7 and two previously uncharacterized mAbs, S11 and S15, recognize the same antigen as the 3E8-specific mAb. However, 2-D gel immunoblot analyses demonstrate the complex nature of Ly-48. Although all four mAbs react similarly with lysates from the M-45 B-cell myeloma line, 2-D immunoblot analyses of the EL-4 T-cell line reveal three distinct patterns of reactivity. Further, while transfection of Ly-48 into the K562 erythroleukemic cell line conferred reactivity to all four mAbs, transfection of the Ly-48 cDNA into the nonhematopoietic cell line, Line 1, conferred reactivity only to the S11 and S15 mAbs. Thus, the Line 1 transfectants suggest the importance of posttranslational modifications in the expression of the 3E8 and S7 epitopes. Interestingly, developing fetal liver cells show the same pattern of differential Ly-48-specific mAb reactivity. The developing early fetal liver cells are reactive with S11 and S15 but are negative, to very weakly, reactive with the 3E8- and S7-specific mAbs. These results show that Ly-48 epitopes can be expressed independently on cell lines in vitro and are differentially expressed on healthy cells in vivo.

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Interleukin-3 inhibits the generation of nonspecific killers by interleukin-2.

Interleukin (IL)-3 has effects on a wide variety of cell types, including immature cells of the immune system, as well as mature cells such as granulocytes. We have investigated the effects of IL-3 on generation of cytolytic cells that can kill tumor cells. Previously, we have shown that IL-3 can enhance the development of cytolytic T cells (CTL) reactive with the line 1 tumor in a CD4-dependent manner. It is of interest that we found the development of CTL in response to IL-3 was not accompanied by increased development of nonspecific killer cells. This was in contrast to IL-2, which enhanced development of both CTL and nonspecific cells. To determine if IL-3 could inhibit the development of nonspecific killers, we added IL-3 to cultures of fresh spleen cells stimulated with high levels of IL-2. In this assay, IL-3 showed very potent inhibitory activity against the generation of nonspecific killers. To determine if IL-3 could inhibit the IL-2-driven generation of non-specific killers in vivo, we injected a mixture of IL-2- and IL-3-producing line 1 cells. Each cytokine-producing transfectant was also injected alone. The cytotoxicity of tumor-infiltrating lymphocytes (TIL) from these tumors confirmed that the presence of IL-3 inhibits the generation of nonspecific killer cells in vivo.

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Thy 1+ dendritic epidermal cells but not Langerhans cells express Ly 48.

Leukosialin (Ly 48) is a sialoprotein expressed by bone marrow-derived cells early in their development. To determine whether Ly 48 is expressed by specific subsets of epidermal cells (ECs) such as Langerhans cells, keratinocytes, or dendritic epidermal T cells (DETCs), we utilized flow cytometry to detect staining of ECs by a panel of four monoclonal antibodies (S11, S15, S7, and 3E8) that recognize two different epitopes of the leukosialin antigen. Approximately 2.0% of unfractionated ECs expressed Ly 48, as demonstrated by reactivity with the monoclonal antibodies S11 and S15. Similarly, immunoblots of unfractionated EC lysates revealed an antigen of 125 kD apparent molecular weight that reacted with the S11 monoclonal antibody. Enrichment or depletion of various EC populations indicated that DETCs are the only EC population that express Ly 48. Studies of long-term cultured DETC lines indicated a marked heterogeneity of expression of Ly 48 epitopes. The function(s) of Ly 48 on DETCs as well as T-cell receptor alpha/beta bearing mouse T cells remains to be determined.

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Two regions of the H-2 Dd promoter are responsive to dimethylsulfoxide in line 1 cells by a mechanism distinct from IFN-gamma.

The line 1 lung carcinoma is a spontaneous BALB/c tumor deficient in class I Ag expression at the protein and mRNA levels. Exposure of line 1 cells to 3% DMSO or IFN-gamma increases class I Ag protein and mRNA dramatically. We have examined the regulation of class I Ag induction by DMSO in line 1 cells. We found DMSO induces class I Ag expression in line 1 cells by a mechanism distinct from IFN, because the kinetics of class I Ag induction by these agents were dramatically different, 7 days vs 3 days, and DMSO did not act through an IFN second messenger. At the molecular level, class I H chain transcription in line 1 cells was low. Treatment with 3% DMSO or IFN-gamma increased H chain transcription four-fold and sevenfold, respectively, indicating that class I H chain expression is regulated at the level of transcription in line 1 cells. Using reporter gene constructs, we mapped the regions in the Dd H chain promoter that increase H chain expression after DMSO treatment of line 1 cells. Two regions of the Dd promoter, D1, from -210 to -133 bp, and D2, from -125 to -61 bp, were found to be independently responsive to DMSO. These regions were also responsive to IFN-gamma in line 1 cells. However, consistent with our cellular results, DMSO and IFN induction of class I H chain expression differed at the molecular level as determined by D1 point mutations that diminished IFN-gamma responsiveness but did not alter induction by DMSO. Thus, DMSO appears to regulate class I transcription through multiple regions of the class I H chain promoter in line 1 cells by a mechanism distinct from IFN-gamma.

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CD4-class II major histocompatibility complex interaction does not enhance killing by a class I-restricted CD4+CD8+ cytotoxic T cell clone.

As unusual tumor-specific cytotoxic T lymphocyte (CTL) clone was isolated which expressed both CD4 and CD8 molecules. The target cells for this CTL can be induced to express either class I major histocompatibility complex (MHC) alone (with dimethylsulfoxide) or both class I and class II MHC (with interferon-gamma). Lysis of the tumor target depends on expression of class I MHC molecules, but does not require expression of class II MHC molecules. Furthermore, the lysis of target cells expressing both class I and class II is inhibited only by antibodies to class I (Kd), and not by antibodies to class II, demonstrating that the T cell receptor is class I restricted. We have used this CTL to assess the role of the interaction between CD4 and class II MHC in the absence of a class II-restricted T cell receptor. Our data indicate that CD4-class II interaction does not contribute to recognition by T cells in the absence of binding of the T cell receptor to class II molecules.

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CD43 is expressed normally on Wiskott-Aldrich-derived lymphocytes.

The Wiskott-Aldrich syndrome (WAS) is an X-linked disease characterized by eczema, thrombocytopenia, and profound immunodeficiency in affected males. While the etiology of the syndrome is currently unknown, abnormalities of CD43 have been described as a biochemical marker of the disease. Several investigators have demonstrated alterations in the expression of the CD43 surface antigen on WAS hematopoietic cells, noting either absence, decreased levels or changes in the characteristic molecular weight of the protein on the lymphocytes of affected patients. Biochemical studies have further indicated that glycosylating activity of specific enzymes which may post-translationally modify CD43 is altered in both T cells and Epstein-Barr-virus (EBV)-transformed B cells in WAS patients when compared to unaffected controls. Here we present data on cells derived from two males with a clinical diagnosis of WAS. Analysis of genomic DNA from the mothers of each of these patients (obligate carriers) showed a nonrandom X-chromosome inactivation pattern of nucleated blood cells, confirming the diagnosis of the X-linked syndrome. CD43 was characterized on peripheral blood lymphocytes and long-term EBV-transformed B cell lines, both to further analyze the molecular defects of WAS, as well as to attempt to generate a reproducible method for disease detection. Surprisingly, surface expression, molecular weight and two-dimensional gel analysis failed to demonstrated any reproducible differences in the CD43 expression, whether from disease or normal lymphocytes. Such results suggest possible heterogeneity of this syndrome.

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