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Biomedical subjects

N Hozumi

Publications and source records attributed to N Hozumi.

At least 19 recordsLinked to original sources

Long term expression of IL-4 in vivo using retroviral-mediated gene transfer.

Th cell subsets regulate immune responses by cell-cell interaction and secretion of cytokines. IL-4 is one of the cytokines secreted by Th cells important for cellular and humoral, particularly IgG1 and IgE responses. To study the role of IL-4 in T cell development and regulation of immune responses in vivo, low IgE-responder C57BL/6 mice were reconstituted with bone marrow cells that had been infected with recombinant retrovirus expressing a high level of IL-4. The reconstituted mice expressed retroviral IL-4 transcripts (9/10) even 8 mo postreconstitution. Physiologically significant levels of IL-4 were detected in the majority of the provirus-positive animals tested (5/8). Ectopic expression of exogenous IL-4 in hematopoietic cells had dramatic effects on T cell development resulting in changes in CD4:CD8 ratios. Moreover, the levels of serum IgG1 and, with antigenic stimulation, IgE were also increased. These results demonstrate that the retrovirus gene transfer system can be used to study the effects of ectopic cytokine gene expression in vivo on Ig isotype regulation and T helper cell subset differentiation.

Animals

Ectopic lymphokine gene expression in human peripheral blood lymphocytes in vivo.

An animal model to study the effects of ectopic expression of cytokines involved in cell growth and differentiation has been established. Retrovirus vectors containing the human interleukin 6 cDNA were used to produce high titer virus-producing lines. Human peripheral blood lymphocytes (hPBLs) were successfully infected with the retrovirus and engrafted into severe combined immunodeficient mice. The majority of the animals were engrafted with hPBLs, as determined by the presence of human glucose phosphate isomerase. Furthermore, six of seven mice engrafted with hPBLs infected with high titer virus and detectable hPBLs present in the spleen expressed the retroviral human interleukin 6 gene. Importantly, human interleukin 6 protein was expressed at physiologically significant levels in these mice. These results demonstrate that models for human disease and immunotherapy involving retrovirus-mediated gene transfer into human cells can be developed in mice.

Animals

Membrane region of surface IgM is not sufficient for transducing growth inhibitory signals in an immature B cell line WEHI-231.

The murine B lymphoma line WEHI-231 is representative of immature B cells. Like normal immature B cells, WEHI-231 is susceptible to growth arrest following cross-linking of surface IgM (sIgM). Previously, we have shown using a WEHI-231 immunoglobulin (Ig) delta-transfectant that sIgD cross-linking failed to initiate growth arrest, in contrast to sIgM. In this report, we extend our research to investigate the structural requirement of Ig mu chain for regulating growth inhibition. Recombinant, chimeric Ig molecules delta/mu m and mu/delta m consisting of exons encoding extracellular delta and mu domains and membrane regions of different isotypes were constructed and introduced into WEHI-231 cells. A similar approach was used for sIgG2b-expressing transfectants. Our findings indicate that the mu m region is not sufficient for regulation of growth inhibition in WEHI-231 cells and suggest that additional extracellular region(s) of mu chain may be required for this response.

Animals

Egr-1 mRNA expression is independent of regulatory proliferative responses in the immature B cell line WEHI-231.

We have recently reported cellular growth arrest induced following crosslinking of surface IgM (sIgM) but not surface IgD (sIgD) in the WEHI-231 cell line, representative of the immature B cell stage, and its delta heavy chain (delta) transfectant. An initial report has indicated WEHI-231.7, a subclone of WEHI-231, failed to express Egr-1 mRNA following sIgM crosslinking, in contrast to significant up-regulation found in mature B lymphocytes. The implication for linkage between selective surface immunoglobulin (sIg) signal transduction, expression of immediate/early genes and control of cellular growth imposes an attractive model for induction of immature B cell tolerance. Our investigations examined the relationships between Egr-1 mRNA expression and growth regulation in WEHI-231, WEHI-231.7 and their respective delta-transfectants (WEHI-delta, WEHI-delta 7). We report sIgM and sIgD crosslinking leads to a rapid increase of Egr-1 mRNA expression in WEHI-231 and WEHI-delta but not in the subclone WEHI-231.7 and WEHI-delta 7. Nevertheless, both WEHI-231, WEHI-231.7 and their delta-transfectants demonstrate the ability to induce growth arrest following sIgM but not sIgD crosslinking. Furthermore, we found Egr-1 expression could be achieved by direct activation of protein kinase C (PKC) by phorbol 12-myristate 13-acetate (PMA) circumventing the classical sIg activated phosphatidylinositol signal transduction pathway. Our results suggest Egr-1 expression does not directly participate in growth regulation of immature B cell clones but rather is a consequence of signal transduction through sIg.

Animals

Functional heterogeneity of human T cell clones from atopic and non-atopic donors.

Several distinct T helper (TH) subsets have been identified, based on the cytokines secreted. Recently, it has been demonstrated that these subsets can regulate the isotype of humoral responses. To investigate the possible differences in TH subsets between atopic donors which have elevated serum IgE and donors with normal serum IgE, we examined series of human TH cell clones. A total of 31 and 22 CD4+ T cell clones from the atopic and non-atopic donors, respectively, were characterized for the ability to help for IgE synthesis in vitro. T cell clones generated with allergen AgE from the atopic donor were autoreactive and all induced IgE synthesis. Tetanus toxoid-specific (TT) and phytohaemagglutinin clones were generated from both donors. There was significant heterogeneity between the T cells isolated with different stimuli from the same atopic donor. Also, there was a significant difference in the number of T cells generated from the atopic versus the non-atopic donor which helped for IgE, although there was no significant difference between the total number of T cells able to help for immunoglobulin synthesis of other isotypes. Most importantly, there was a higher frequency of clones able to support IgE synthesis between TT-specific T cell clones generated from the atopic versus the non-atopic donor. These results suggest that there are changes in subsets of TH cells specific for microbial antigens as well as allergens in atopics, which may have important implications for the aetiology of atopic disease.

Clone Cells

Amino acid residues in the T cell receptor CDR3 determine the antigenic reactivity patterns of insulin-reactive hybridomas.

We examined TCR gene usage in a panel of beef insulin/I-Ad-restricted T cell hybrids obtained from BALB/c mice. These hybrids demonstrated several distinct patterns of reactivity defined by their ability to respond to species variants of insulin. Correlation of TCR-alpha and -beta-gene usage with these patterns of reactivity demonstrated that TCR gene usage was restricted within Ag reactivity groups. In particular, V-J junctional regions (CDR3 equivalent) were restricted with conserved junctional amino acid motifs present in both TCR-alpha- and -beta-chains. Comparison of TCR gene usage in hybrids expressing identical V alpha and V beta gene segments but demonstrating different patterns of reactivity revealed that changes in either J alpha and/or J beta gene segment usage could alter antigenic reactivity. Indeed, single or limited amino acid differences within the CDR3 region were sufficient to markedly alter fine specificity. These data demonstrate the critical role for CDR3 in determining antigenic reactivity in beef insulin-reactive hybrids and are compatible with the current model of TCR/peptide/MHC interaction.

Amino Acid Sequence

Comparative biodistribution and antibody-dependent cellular cytotoxicity of native and heavy chain chimeric antibody.

We have recently chimerized the heavy chain of the pan-carcinoma monoclonal antibody (mAb) B72.3. Studies were undertaken to compare the IgG1 chimeric antibody, B72.3-1-3 with native murine B72.3 (nB72.3). Using fluorescence-activated cell sorting analysis, B72.3-1-3 demonstrated specific binding to fresh LS174T tumor cells. Biodistribution of 131I B72.3-1-3 was similar to 131I nB72.3 in nude mice bearing LS174T xenografts. Peak radiolocalization indices were noted on day 6 for B72.3-1-3 and day 8 for nB72.3. Both antibodies were capable of imaging LS174T tumors by radioimmunoscintigraphy. Antibody-dependent cellular cytotoxicity of LS174T by human peripheral blood lymphocytes was tested in 8h 51Cr release assays. With either no antibody or nB72.3, lymphocytes were not capable of killing LS174T cells. However, B72.3-1-3 at a concentration of 5 and 50 micrograms/ml mediated significant lysis of tumor cells by human lymphocytes. These results suggest that chimeric antibodies retain their binding properties to tumor cells and display biodistribution patterns similar to their unmodified counterparts. Such modifications may reduce the deleterious human antimouse antibody response to murine mAbs as well as augment antibody-dependent cellular cytotoxicity of tumor cells by human effectors.

Animals

Differential sensitivity of specific and nonspecific antigen-presentation by B cells to a protein synthesis inhibitor.

Specific and nonspecific Ag-presentation by B cells was examined for the sensitivity to the treatment with emetin, an irreversible protein synthesis inhibitor. For this aim, A20-HL B lymphoma cells expressing surface IgM receptors specific for TNP were used as APC. OVA and TNP-OVA were used as nonspecific and specific Ag, respectively. The treatment with emetin greatly impaired the ability of A20-HL cells to present specific Ag, but not nonspecific Ag, to 42-6A cloned T cells specific for OVA. The ability of the emetin-treated A20-HL cells to present nonspecific Ag indicates that the treated cells are able to process nonspecific Ag and to present processed Ag. Ag binding and the internalization by A20-HL cells through surface receptors were not affected by the emetin treatment. A20-HL cells took up specific Ag for stimulation of 42-6A cells in the presence of cycloheximide, a reversible protein synthesis inhibitor. These results suggest that the action of emetin is localized to the intracellular processing of specific Ag, not of nonspecific Ag. Thus, the processing pathway for specific Ag seems to be different from that for nonspecific Ag.

Animals

Expression of ras oncogene leads to down-regulation of protein kinase C.

The effect of mutated c-Ha-ras expression on Ca2+ and phospholipid-dependent protein kinase C (PKC) activity during the process of transformation was analysed using an inducible metallothionein-ras hybrid oncogene system. A close correlation was found between the timing of ras expression and the loss of PKC enzymatic activity measured in a cell-free system. Examination of the subcellular distribution of the enzyme in inducible and constitutive ras-transformants revealed that expression of ras was associated with an apparent translocation of PKC to the plasma membrane concomitant with down-regulation of PKC enzymatic activity in particulate as well as cytosolic fractions. Quantitation of PKC protein utilizing a PKC-specific antiserum showed that ras expression was associated with a decrease in the total amount of PKC protein present in the cell. We conclude that transformation by c-Ha-ras is accompanied by down-regulation of PKC activity and that the basis of this effect may, to a large extent, lie in the down-regulation of the amount of PKC protein.

Animals

Class I (H-2Kb) gene transfection reduces susceptibility of YAC-1 lymphoma targets to natural killer cells.

A "hybrid gene" (MTKb) comprised of the human metallothionein IIA promoter ligated to the genomic sequence of the major histocompatibility complex class I (H-2Kb) gene was subcloned into the expression vector pSV2neo and transfected into the natural killer (NK) cell-sensitive YAC-1 lymphoma. The Kb gene product was readily detectable on the cell surface of G418-resistant transfectants using both Kb-specific monoclonal antibodies and H-2b-specific cytolytic T cells. Unlike control pSV2neo transfectants, MTKb-pSV2neo transfectants were relatively resistant to lysis by NK cells from H-2a, H-2b, H-2k or H-2 (a x b)F1 haplotype mice. These data strongly suggest that the effects of MHC expression on susceptibility to NK cells can be mediated by a single and well-defined class I molecule, Kb.

Animals

Production of murine V-human Cr1 chimeric anti-TAG72 antibody using V region cDNA amplified by PCR.

A mouse/human chimeric B72.3-1-3 antibody was produced by construction of a novel expression vector mpSV2neo-EP1-V-Cr1. This vector contains the neo gene as a selection marker, the murine immunoglobulin heavy chain promoter and enhancer, the murine V region cDNA containing mRNA splicing joint sequences, amplified and cloned by the PCR technique directly from the B72.3 hybridoma RNA, and the human genomic Cr1 region. The expression vector containing the murine/human chimeric immunoglobulin heavy chain gene was transfected into heavy chain loss mutant cell line, B72.3Ml. Chimeric B72.3-1-3 antibody was produced at 2 micrograms/ml and retained full binding reactivity to TAG72 compared to the murine B72.3 parental antibody. Using this method, chimeric immunoglobulin molecules can be produced rapidly in comparison with the cDNA and genomic cloning techniques.

Amino Acid Sequence

Long-term expression of a T-cell receptor beta-chain gene in mice reconstituted with retrovirus-infected hematopoietic stem cells.

To determine the feasibility of retrovirus-mediated gene transfer into stem cells for studying T-cell development, we constructed a high-titer retrovirus vector containing the neomycin phosphotransferase (neo) gene and a murine T-cell receptor (TCR) beta-chain gene with the V beta 6 variable segment. The TCR gene was placed under the control of the human beta-actin promoter and enhancer. Bone marrow cells pretreated with 5-fluorouracil were infected by coculturing with psi-2 virus-producing cells in the presence of recombinant interleukins 1, 2, 4, and 6 as well as interleukin 3 from WEHI-3 conditioned medium. The infected cells were transplanted into irradiated mice, and expression of the exogenous V beta 6 gene was examined with a V beta 6-specific monoclonal antibody, RNase protection, and polymerase chain reaction amplification. Three of seven mice expressed the retroviral TCR gene on the surface of a significant proportion of mature T cells 5-6 months after transplantation. In mice analyzed less than 1 month after transplantation, up to 30% of mature T cells expressed V beta 6 TCRs, an increase of at least 20% above the level of endogenous V beta 6 expression. DNA analysis revealed that pluripotent hematopoietic stem cells were infected by the retroviral vector in a long-term reconstituted mouse that showed increased V beta 6 expression.

Actins

CD4+ cytolytic T cell clones that recognize polymorphism of HLA-DR beta 3 chains.

We have investigated HLA-DR beta 3-associated functional polymorphism using selected Epstein-Barr virus (EBV) specific human T cell clones and EBV-transformed B cell (EBV-B) lines. To study the relationship between T cell recognition and the gene products of the three alleles of the DR beta 3 locus, Dw24, 25 and 26 (these were previously called DRw52a, b and c, respectively), CD4+ cytolytic T cell clones (CD4+ CTL) were isolated by repeated stimulation of peripheral blood mononuclear cells (HLA A2 A24; B8 B27; DRw17, Dw24, DRw2) with autologous EBV-B. Clone no. 32 proliferated strongly in response to HLA-Dw24 EBV-B, but not to Dw25 or Dw26 EBV-B. Furthermore, clones no. 32 and no. 45 both lysed HLA-Dw24 EBV-B but not Dw25 or Dw26 EBV-B. In addition, cold target inhibition studies showed that the cytolytic activity of both clones was blocked by unlabelled HLA-Dw24 EBV-B, but not by Dw25 or Dw26 EBV-B. Clones no. 32 and no. 45, therefore, could distinguish between the three allelic products of DR beta 3 haplotypes.

Antigens, Viral

Parameters that govern the regulation of immunoglobulin delta heavy-chain gene expression.

The mu and delta immunoglobulin heavy-chain genes comprise a complex transcriptional unit in which a single mRNA precursor gives rise to mu- and delta-specific transcripts. During the immature B-cell stage, posttranscriptional processing events involving alternate splicing and cleavage-polyadenylation site selection give rise to mu- but not delta-encoding transcripts. In terminally differentiated B cells, delta mRNA is not synthesized because of a transcription termination event occurring upstream of the delta-gene locus. In an attempt to gain insight into the respective contributions of alternate splicing and cleavage-polyadenylation in the control of delta mRNA synthesis, we have constructed a set of plasmids in which membrane mu (mu m)-delta intergenic sequences containing the mu m poly(A) site but differing in splicing capacity were inserted in between a VH and delta gene. The mu m-delta insertion vectors were transfected into a B lymphoma line representative of an immature stage, and proximal mu m poly(A) site usage and delta mRNA synthesis were assessed. To determine unequivocally whether the mu m-delta intergenic region can regulate termination, the insertion vectors were also transfected into a B myeloma line, and transcription through the region was measured. In immature B-cell transfectants, splicing site selection was found to have a key role in determining poly(A) site utilization and concomitant delta mRNA expression. Mature delta mRNA synthesis was blocked by an upstream cleavage-polyadenylation event only when the proximal poly(A) site was associated with appropriate splicing signals. Furthermore, in vitro transcription assays revealed that the mu m-delta intergenic region is sufficient to regulate transcription termination within a 1,2430-base-pair region containing the mu m poly(A) site in myeloma transfectants. The mu m-delta insertion vectors provide an excellent model system for studying the regulatory aspects of this transcription termination event.

B-Lymphocytes

CD4+ cytolytic T cell clones restricted to HLA class II, DR beta I, and DR beta III chains.

We have investigated the functional polymorphism of HLA class II antigens using CD4+ CTL clones. Seven CD4+ CTL clones were isolated from a healthy donor (HLA A2 A24; B8 B27; DRw17 DRw52a) by repeated stimulation with irradiated autologous EBV-transformed B cell lines (EBV-B). According to the HLA restriction specificity we divided CD4+ CTL clones into three subgroups: (i) DRw17-restricted CD4+ CTL clones; (ii) DRw52a-restricted CD4+ CTL clones; and (iii) the CD4+ CTL clones, of which the restriction specificity could not be assigned to products of a single HLA locus. Interestingly, DRw17-restricted CD4+ CTL clones distinguished between DRw17 and DRw18. Similarly, DRw52a-restricted CD4+ CTL clones distinguished between DRw52a, w52b, and w52c. There are four amino acids which differ between DRw17 and DRw18, whereas five differ between DRw52a and the other two alleles (DRw52b and DRw52c). The recent elucidation of the crystal structure of a human class I MHC molecule has identified the probable peptide binding site to be a cleft on the outer surface of the molecule, between two alpha-helices. On the basis of the theoretical model for HLA class II molecules, amino acid positions 26 and 28 (DRw17 vs DRw18) and amino acid positions 26, 28, and 74 (DRw52a vs the other two alleles) lie within the "cleft." We propose that amino acid positions 26 and 28 are very important sites with regard to the recognition of antigen-MHC complex by the TCR.

Binding, Competitive

Murine lymphocytes with natural killer activity express CTL-derived serine protease genes.

Serine protease genes (C11, B10 and HF) derived from activated cytolytic T lymphocytes have been shown to be important in CTL-mediated cytotoxicity. In this study, we examined the expression of these genes in fresh natural killer (NK) cells from severe combined immunodeficiency (SCID) and athymic nude mice, as well as in T-cell lines with NK activity. All of these serine protease genes were expressed in NK cells freshly isolated from SCID and athymic nude mice. In addition, all lines showed similar strong levels of expression of C11 and B10 genes, but not the HF gene. However, levels of expression in the T-cell lines did not correlate with levels of NK-like cytotoxicity. These results suggest that C11, B10 and HF serine protease genes are necessary but not sufficient for NK-like cytotoxicity.

Animals

Killing of antigen-reactive B cells by class II-restricted, soluble antigen-specific CD8+ cytolytic T lymphocytes.

Cytolytic T lymphocytes (CTLs) are generally thought to recognize cellular antigens presented by class I MHC molecules. A number of studies, however, have revealed responses of considerable magnitude involving both CD8+ and CD4+ CTLs with class II restriction, suggesting that class II-restricted CTLs recognizing exogeneous protein antigens may exist. As class II antigens are normally expressed on limited types of cells such as B cells and macrophages, such CTLs might be expected to exert a suppressive effect on antibody responses. Here we report that stimulation of mouse lymphocytes with a soluble antigen induced CD8+ and CD4+ CTLs specific for the antigen with class II restriction. The specific lysis was far more efficient when target B cells specifically recognized the antigen than when they did not, indicating that the primary targets for these CTLs are probably B cells expressing immunoglobulin receptors reactive for the same antigen molecule. These results suggest that the natural occurrence of such CTLs during immune responses may explain antigen-specific suppression on antibody responses by T cells.

Animals

Class II antigen-specific murine cytolytic T lymphocytes (CTL). II. Genuine class II specificity of Lyt-2+ CTL clones.

Class II-specific allogeneic cytolytic T lymphocytes (CTL) consist of two types of cells, i.e., Lyt-2+L3T4- and Lyt-2-L3T4 T cells. The Lyt-2+L3T4- class II-specific CTL population constitutes a conspicuous exception to the general correlation observed between the class of major histocompatibility complex antigen recognized and the type of accessory molecules expressed by T cells. In order to examine the specificity of such an exceptional T cell population, CTL clones were established by limiting dilution of a bulk CTL line developed in an I region incompatible combination of mouse strains, B10.QBR anti-B10.MBR. These CTL lines showed single genetic specificity indicating their clonal nature with respect to CTL activities. Lyt-2+L3T4- (2+4-), Lyt-2-L3T4+ (2-4+) and Lyt-2-L3T4- (2-4-) clones were obtained. Among many CTL clones showing a spectrum of genetic specificities, 2+4- and 2-4+ clones with apparent I-Ak-specificity, were studied further and four lines of evidence confirmed their class II specificity: 1) genes encoding the target antigen for these CTL clones were mapped within the I-A subregion by simple genetics; 2) an I-Ak-specific monoclonal antibody readily blocked specific cytolysis by these clones; 3) the clones failed to react with cells expressing mutated I-Ak antigens; and 4) a B cell tumor transfected with alpha- and beta-chain genes of I-Ak was specifically lysed by these CTL clones. These data therefore establish the existence of Lyt-2+ CTL with genuine class II specificity. All 2-4+ CTL were sensitive to the blocking effect of an antibody to L3T4, whereas none of the 2+4- class II-specific CTL were sensitive to blocking by an anti-Lyt-2 antibody, indicating that class II-specific CTL with "wrong phenotype" is not dependent on the function of the accessory molecule. Besides true class II-specific CTL clones, 2+4- clones with a spectrum of genetic specificities were obtained, including clones recognizing a combination of an I-Ak product and the Kb molecule. Two 2-4- clones were also specific for the combination of Kb + I-Ak. These clones most likely recognize an allogeneic class II antigen in the context of a class I antigen and therefore would more appropriately be included in the class I-restricted T cell population.

Animals