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J G Frelinger

Publications and source records attributed to J G Frelinger.

At least 55 records · Page 3Linked to original sources

Mechanism of cytolytic T lymphocyte killing of a low class I-expressing tumor.

Many tumors have been shown to express minimal levels of class I MHC Ag, which makes them more resistant to recognition and lysis by cytolytic T lymphocytes. Line 1, a BALB/c spontaneous lung carcinoma, normally expresses very low levels of class I Ag, but expression can be increased 50-fold by treatment with agents such as DMSO or IFN-gamma. Because class I Ag serve as restricting elements for cytolytic T cell recognition of tumor Ag, we wished to determine if cytotoxic T lymphocytes could play a role in the immune response to this type of class I low, but inducible, tumor. After immunization in vivo and restimulation of splenic cells in vitro we were able to generate T cell clones that lysed line 1 cells induced to express high levels of class I, but did not lyse uninduced, low class I expressing line 1 cells in short term (6-h) 51Cr release assays. Paradoxically, incubation of the T cells with uninduced class I low line 1 cells for a few days resulted in complete destruction of the tumor cells. We demonstrate that the T cells, stimulated by the tumor cells, produce IFN-gamma, which in turn induces class I expression on the line 1 cells making them susceptible to lysis by the T cell clone. This suggests that a positive feedback reaction can occur in generating a response to this and perhaps other inducible tumor cell lines.

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Class-I MHC expression in the mouse lung carcinoma, line 1: a model for class-I inducible tumors.

We have examined the expression and biological effects of class-I MHC molecules on the immune response to the line I lung carcinoma. The line I system is of interest because these tumor cells have very low constitutive levels of class-I molecules but can be induced to express levels found on spleen cells, by culturing the cells with agents such as dimethylsulfoxide (DMSO) or interferon gamma (IFN-gamma). This induction is significant immunologically, since induced cells can be lysed very effectively by cytotoxic T lymphocytes (CTL), whereas the uninduced cells cannot. CTL clones that are reactive with line I cells have been generated and used in vitro and in vivo, to examine the interactions of T cells with line I. We have shown that the expression of class I on tumor cells is induced in vivo by IFN-gamma, and that this induction is associated with the ability to reject the tumor. We will also introduce preliminary data concerning the mechanism of induction in which CTL appear to induce class-I MHC both in vitro and in vivo. The results are discussed in terms of a model which may be important generally for class-I inducible tumors.

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CD43 (leukosialin, sialophorin, large sialoglycoprotein) can be expressed in both normal and Wiskott-Aldrich fibroblasts via transfection of a leukosialin cDNA.

Human leukosialin is among the most abundant sialoglycoproteins found on the surface of cells of the lympho-hematopoietic system. Leukosialin, also known as sialophorin, is involved in T cell proliferation, and its molecular isoform changes upon cellular activation. We show that human leukosialin is identical to the antigens described by the monoclonal antibodies (mAb) G10-2, G19-1 (CD43) and B1B6 (large sialoglycoprotein). This identity was suggested by immunoblot analysis of transformed cell lysates. Further, fibroblasts transfected with the human leukosialin cDNA gain reactivity to these mAb, showing conclusively that molecules recognized by these mAb are determined by the same cDNA. Expression of the leukosialin gene is readily detected on the surface of transfected human and mouse fibroblasts. Immunoblot analysis of the transfectants indicates that processing of the human protein occurs in both species. Alterations of leukosialin expression have been reported in patients with the Wiskott-Aldrich Syndrome (WAS), an X-chromosome-linked immunodeficiency disease. While essentially all of the transfected tumor and primary fibroblasts from normal individuals express the transfected gene on the cell surface, only half of the transfected Wiskott-Aldrich fibroblasts express CD43. Nonetheless, the antigenic pattern by immunoblot analysis of both normal and WAS-transfected fibroblasts appears identical. These results indicate that WAS-derived cells can express leukosialin and that the product of WAS X-chromosome mutation may not be expressed in fibroblasts.

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Differential expression of interleukin 1 alpha by Thy-1+ and Thy-1- lung fibroblast subpopulations: enhancement of interleukin 1 alpha production by tumor necrosis factor-alpha.

The purpose of this investigation was to determine whether subpopulations of murine lung fibroblasts produced interleukin 1 (IL 1). We previously identified two major populations of pulmonary fibroblasts based on the presence or absence of Thy-1. Thy-1+ and Thy-1- subsets synthesize fibronectin and type I and III collagen, but only the Thy-1- population displays class II major histocompatibility complex antigens after stimulation with interferon-gamma and presents antigen to T helper clones. Interestingly, in the current study we determined that only Thy-1- fibroblast lines and clones synthesized IL 1. Although constitutive production was low, tumor necrosis factor -alpha (TNF-alpha) stimulated 5-20-fold increases in IL 1 production in Thy-1- fibroblasts. The Thy-1+ fibroblasts did not produce IL 1 even after TNF-alpha treatment. Northern blot analysis of TNF-alpha treated cells revealed that in the Thy-1- subset increased mRNA levels for IL 1 alpha were detected, while IL 1 beta mRNA was not detected. Furthermore, IL 1 activity from TNF-alpha-treated Thy-1- fibroblast membranes and supernatants was completely neutralized by IL 1 alpha-specific antibodies. These observations support the hypothesis that the antigen-presenting Thy-1- subset is important for promoting the inflammation associated with pulmonary fibrosis. In addition, the existence of functional subsets of lung fibroblasts is further substantiated by differential expression of IL 1.

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cDNA cloning and localization of the mouse leukosialin gene (Ly48) to chromosome 7.

Mouse leukosialin, previously known as the 3E8 antigen, is expressed primarily on cells of the hematopoietic and lymphoid lineages and is shown to be the mouse homologue to the human leukosialin/sialophorin and rat W3/13 molecules. A partial leukosialin cDNA clone was isolated via cross-species hybridization with a portion of a human leukosialin cDNA. This mouse cDNA clone was used to demonstrate that the leukosialin isoforms are encoded by a single mRNA species of approximately 4.2 kilobases (kb) and that the leukosialin gene is located on chromosome 7. Based on these results, mouse leukosialin is given the designation Ly48.

Amino Acid Sequence↗

Alteration of the metastatic potential of line 1 lung carcinoma cells: opposite effects of class I antigen induction by interferons versus DMSO or gene transfection.

Class I antigens are necessary for the recognition of tumor cells by cytotoxic T lymphocytes (CTL). The line 1 lung carcinoma is a spontaneous murine tumor deficient in class I antigen expression. Consistent with this, line 1 cells are highly metastatic in vivo. We investigated whether increasing class I antigen expression on line 1 cells could alter the metastatic potential of these tumor cells using an in vivo lung metastasis model. We used three methods to induce class I antigen expression on line 1 cells: gene transfection, treatment with dimethyl sulfoxide (DMSO), or treatment with interferon (IFN)-beta or -gamma. We found that line 1 cells expressing a transfected class I gene were significantly less metastatic than parental line 1 cells. DMSO-treated line 1 cells also formed significantly fewer metastases than parental line 1 cells. These results indicate that increased class I antigen expression decreases the metastatic potential of line 1 cells in vivo. However, we did not observe a significant decrease in the number of lung metastases in mice receiving line 1 cells treated with IFN-beta or -gamma, despite high levels of class I antigen expression. Thus, increasing class I antigen expression with IFN has an opposite effect on metastasis from class I antigen expression induced by transfection or DMSO. These results show that the method used to increase class I antigen expression is critical in terms of the in vivo effect observed. To investigate a possible mechanism for the differences observed in vivo between these class I expressing cells, we tested whether IFN alters or blocks susceptibility of line 1 cells to immune effector cells. We found IFN treatment increased the ability of line 1 cells to be recognized by CTL but concomitantly decreased the susceptibility of line 1 cells to NK cell lysis by a non-class I antigen-related mechanism. In contrast, transfected or DMSO-treated line 1 cells which were less metastatic in vivo were susceptible to both CTL and NK-mediated lysis. Taken together, these results suggest that immune intervention against metastasizing line 1 cells may involve NK cells and CTL.

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Characterization of cDNAs encoding human leukosialin and localization of the leukosialin gene to chromosome 16.

We describe the isolation and characterization of cDNA clones encoding human leukosialin, a major sialoglycoprotein of human leukocytes. Leukosialin is very closely related or identical to the sialophorin molecule, which is involved in T-cell proliferation and whose expression is altered in Wiskott-Aldrich syndrome (WAS), an X chromosome-linked immunodeficiency disease. Using a rabbit anti-serum to leukosialin, a cDNA clone was isolated from a lambda gt11 cDNA library constructed from human peripheral blood cells. This lambda gt11 clone was used to isolate longer cDNA clones that correspond to the entire coding sequence of leukosialin. DNA sequence analysis reveals three domains in the predicted mature protein. The extracellular domain is enriched for Ser, Thr, and Pro and contains four contiguous 18-amino acid repeats. The transmembrane and intracellular domains of the human leukosialin molecule are highly homologous to the rat W3/13 molecule. RNA gel blot analysis reveals two polyadenylylated species of 2.3 and 8 kilobases. Southern blot analysis suggests that human leukosialin is a single-copy gene. Analysis of monochromosomal cell hybrids indicates that the leukosialin gene is not X chromosome linked and in situ hybridization shows leukosialin is located on chromosome 16. These findings demonstrate that the primary mutation in WAS is not a defect in the structural gene for leukosialin.

Amino Acid Sequence↗

Molecular analysis of deficient class I H-2 antigen expression by mouse lung carcinoma cells.

We have continued our investigations of line lung carcinoma cells to understand the molecular basis of decreased expression of class I H-2 Ag and class I Ag induction with DMSO. We show that line 1, a murine lung carcinoma cell line, has low levels of class I Ag (H-2K, D, and L) because it is deficient in both class I and beta 2-microglobulin (B2M) RNA, and that these mRNA can be coordinately induced with DMSO. Evidence presented herein also shows that IFN-gamma can induce surface expression of class I Ag and suggests that it may act through a different mechanism than DMSO in inducing class I Ag. To further evaluate the regulation of class I expression, H-2Dp genes were transfected into line 1 cells. The transfected H-2 genes appear to be constitutively expressed at much higher levels than are the endogenous class I genes because surface expression of the foreign Dp Ag on the transfectants is elevated relative to the endogenous H-2d haplotype class I Ag. Both Dp surface expression and Dp mRNA are induced after treatment with DMSO. In all the Dp transfectants, we observed higher constitutive levels of class I mRNA as well as increased constitutive levels of endogenous B2M mRNA when compared to control or untransfected line 1 cells, however, we could not correlate these constitutive levels with Dp copy number. These results suggest that the regulation of class I and B2M genes is linked and that expression of class I genes can affect the expression of B2M genes.

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Lysis of a lung carcinoma by poly I:C-induced natural killer cells is independent of the expression of class I histocompatibility antigens.

Cells from the line 1 murine carcinoma express little if any H-2d when grown in normal medium. These cells are susceptible to splenic cell populations with NK activity, stimulated by prior injection of poly I:C, but are not lysed by NK-deficient splenocytes from homozygous beige mice treated with anti-asialo GM1. Incubation of line 1 cells in medium containing DMSO leads to a dramatic stimulation of H-2d expression but no change in lytic susceptibility to splenic NK cells. Transfection of H-2Dp into line 1 leads to a constitutive and DMSO-inducible expression of H-2Dp at functionally significant levels, but this expression appears to have no influence on NK cytolytic susceptibility.

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Identification and characterization of a mouse cell surface antigen with alternative molecular forms.

We present the characterization of a new mouse cell surface protein, recognized by the 3E8-specific monoclonal antibody. The expression of this antigen is predominantly restricted to the hematopoietic and lymphoid tissues: bone marrow, spleen, lymph node, and thymus. Immunoblot analyses show that the 3E8 determinant is present on molecules with different apparent relative masses. The 3E8 antigen migrates on sodium dodecyl sulfate-polyacrylamide gel electrophoresis as a single band of Mr 115,000 for normal nonstimulated spleen cells and thymocytes and as two bands of Mr 115,000 and Mr 125,000 for bone marrow cells and mitogen-stimulated spleen cells. The multiple sizes of the 3E8 antigens (isoforms) found on various cell lines are not due to allelic polymorphism, but instead may reflect the specific cell type or reflect the cell's state of activation or maturation. Results from lectin chromatography and N-glycanase and neuraminidase studies suggest that the 3E8 antigen is a heavily sialylated O-linked glycoprotein. The unusual features of this antigen indicate that it may be the mouse homologue of the rat W3/13 antigen and the human leukosialin/sialophorin antigens.

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Reduced tumorigenicity of a spontaneous mouse lung carcinoma following H-2 gene transfection.

Cultured cells of the murine lung carcinoma called line 1 express very low levels of H-2 class I antigens and are resistant to lysis mediated by alloreactive T cells. In order to investigate how the expression of class I antigens affects the in vivo growth of this spontaneous tumor, H-2Dp genes were transferred into line 1 cells. Cloned transfectants that displayed H-2Dp surface antigens were identified using flow cytometry. The transfected H-2Dp antigens appeared normal by two-dimensional gel electrophoresis and could also function as excellent targets for T-cell-mediated lysis in vitro. Marked differences in tumorigenicity (defined as tumor growth in immunologically competent hosts) were observed between the Dp transfected cells and untransfected or control transfected line 1 cells in syngeneic mice only if the animals had previously received injections of irradiated Dp transfectants. Expression of Dp antigens did not appreciably affect the growth of line 1 tumors in immunologically naive syngeneic mice or necessarily cause rejection in allogeneic mice. Our in vivo results show that increased expression of class I antigens can reduce the growth of tumors like line 1 that lack all class I antigens. Our results also suggest that increasing class I antigens alone on some spontaneous tumors deficient in expression will not by itself be sufficient for tumor rejection.

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An analysis of monoclonal T cell and antibody recognition sites on Ia molecules.

The advances made in understanding T cell and antibody recognition sites on Ia using monoclonal helper and alloreactive T cells are summarized. For many antibodies it has been possible to determine whether the antibody recognition site was determined by the alpha or beta chain. Such defined antibody reagents have allowed the definition of multiple functional antigen presenting sites on a given Ia molecule. Mutant antigen-presenting cells independently suggest the existence of such multiple functional sites. A detailed analysis of the I-Ab mutant bm 12 directly defines the chemical nature of one such site and suggests that it arose as a result of gene conversion. Such regions of Ia molecules may be important for both T-cell function and antibody-binding.

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Identical RT1 class II molecules are expressed by rat RT1m and RT1c haplotypes.

The RT1m haplotype of MNR rats has been suggested to be a recombinant RT1 haplotype inheriting RT1.A (class I) alleles from RT1a (DA) and RT1.B (class II) alleles from RT1c (AUG). Additional serologic and biochemical assays, however, have suggested that RT1m and RT1c share a single identical RT1.B molecule, although differing in the expression of the second RT1.B molecule. To resolve this contradiction, RT1.B class II molecules, comparable to I-A and I-E molecules in mice, expressed by the RT1c and RT1m haplotypes were immunoprecipitated by cross-reactive mouse anti-Ia antibodies and were compared by two-dimensional gel electrophoresis and by high pressure liquid chromatographic separation of tryptic peptides. Respective subunits expressed by the two haplotypes co-migrate on two-dimensional gels and have identical tryptic peptide maps. The results at the protein level were confirmed at the DNA level by Southern blot analysis of MNR and AUG genomic DNA. Identical restriction fragments associated with the RT1m and RT1c haplotypes hybridized with each of the DC1 beta, DR alpha, and DR beta cDNA probes. The results at both the protein and DNA levels suggest that the RT1m and RT1c haplotypes share identical expressed alleles at the RT1.Ba, RT1.Bb, RT1.Bc, and RT1.Bd loci.

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Multiple functional sites on a single Ia molecule defined using T cell clones and antibodies with chain-determined specificity.

Monoclonal antibodies (mAb) were used to inhibit the proliferation of antigen-reactive (C57BL6/J X A/J)F1 restricted T cell clones. We have been able to subdivide these F1 restricted T cell clones into two groups: one of which recognizes the A alpha k A beta b molecule and the other group which recognizes the A alpha b A beta k molecule. Using clones with defined reactivities, we could assign the reactivities of monoclonals to the A alpha or A beta chains. By immunoprecipitation and two-dimensional analysis of Ia molecules from F1 spleen cells, we could independently map the reactivities of the mAb as being determined by the A alpha or A beta chain. To date, these two methods of chain localization of the antibody reactivity have agreed. Further, the differential blocking of the A alpha k A beta b restricted T cell clones suggests that there exists more than one restriction site per Ia molecule. Increasing the number of possible functional Ia restriction sites, either through combinatorial association of alpha and beta chains or by using more than one site per molecule, should increase the number of ways Ia molecules can function in antigen presentation.

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T-lymphocyte clones.

To date, the most successful uses of T-cell clones have been in the demonstration that a single type of cell can perform multiple functions. However, their potential usefulness is enormous, and the study of cell interactions using clonal populations has just begun. The development and study of more cloned populations will surely lead to a clearer analysis of cellular interactions in the immune system. The use of T-cell clones and hybridomas to analyze T-cell receptors and/or factors is well under way, and will continue to be an area of intense investigation. Molecular biologists will undoubtedly make more extensive use of T-cell clones in the future, both as a source of cloning material and as transfection recipients. The most exciting area for development, from a medical point of view, is the potential for use of these cell lines or their products in immunotherapy and in providing a mechanism for specifically modulating the immune response.

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T cell clones specific for hybrid I-A molecules. Discrimination with monoclonal anti-I-Ak antibodies.

Alloreactive and soluble antigen-reactive, I-A-restricted T cell clones were examined for their ability to recognize hybrid I-A antigens. Several clones that recognized hybrid I-A(b)/I-A(k) molecules on (C57BL/6 x A/J)F(1) [(B6A)F(1)] spleen cells were studied. We were able to distinguish clones that recognized hybrid I-A molecules of the A(b)(a)A(k)(beta) type from those that recognized A(k)(a)A(b)(beta) molecules. We reached this conclusion by considering data from three independent types of experiments. (a) Monoclonal antibodies were used to inhibit T cell stimulation. Antibodies 10.2.16 and H116.32 distinguished two mutually exclusive "families" of T cell clones. One group of clones was inhibited by 10-2.16 and not H116.32, the other group exhibited reciprocal inhibition. (b) T cell proliferation was assayed using antigen-presenting cells from B6.C-H-2(bml2) (bml2) and [bml2 x B10.A(4R)]F(1) mice. Because the bml2 strain has a mutation that results in an altered A(b)(beta) polypeptide chain (A(bm12)(beta)), we reasoned that clones that could recognize the [bm12 x B 10.A(4R)]F(1) cells were recognizing A(b)(a)A(k)(beta) molecules. Alternatively, clones not recognizing [bml2 x B10.A(4R)]F(1) cells had specificity for A(k)(a)A(b)(beta) molecules. (c) I-A molecules immunoprecipitated from radiolabeled (B6A)F(1) splenocyte extracts were analyzed by two-dimensional sodium dodecyl sulfate-polyacrylamide gel electrophoresis. These experiments confirmed an earlier report that antibody 10.2.16 recognized determinants on the A(k)(beta) chain (12). Antibody H116.32 immunoprecipitated products consistent with recognition of A(k)(a) determinants. Taken together, these three types of results offer conclusive evidence that T cell clones recognizing "hybrid" I-A molecules use either A(b(k)A(k)(beta) or A(k)(a)A(b)(beta) molecules as recognition or restriction sites. Clones whose proliferation was supported by [bm 12 x B10.A(4R)]F(1) cells and blocked by anti-I-A(k) antibody 10-2.16 recognized A(b)(a)A(k)(beta) B molecules. Clones that were blocked by antibody H116.32 and did not recognize [bml2 X B10.A(4R)]F(1) cells use a recognition site(s) on A(b)(a)A(k)(beta) molecules. Thus, we can demonstrate both functionally and biochemically that hybrid F(1) I-A molecules of the structure A(k)(a)A(b)(beta) and A(b)(a)A(k)(beta) both exist on (B6A)F(1) splenocytes and that both configurations are used in immune recognition phenomena.

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Peptide map comparisons of epidermal and spleen H-2 molecules.

Peptide map comparisons of molecules encoded in the mouse H-2 complex isolated from epidermal cell preparations have been carried out. We previously showed that the Ia molecules from both the I-A and I-E subregions are synthesized by nonlymphoid bone-marrow-derived cells, probably Langerhans cells. The K and D or transplantation molecules are synthesized by both "true" epidermal cells and nonlymphoid bone-marrow-derived cells. The tryptic maps generated by separating tryptic peptides by high pressure liquid chromatography (HPLC) of epidermal H-2 molecules are identical to their spleen-cell counterparts. The biological significance of this finding is discussed.

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