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R L Prestidge

Publications and source records attributed to R L Prestidge.

At least 19 recordsLinked to original sources

Cloning and biological activity of epigen, a novel member of the epidermal growth factor superfamily.

High throughput sequencing of a mouse keratinocyte library was used to identify an expressed sequence tag with homology to the epidermal growth factor (EGF) family of growth factors. We have named the protein encoded by this expressed sequence tag Epigen, for epithelial mitogen. Epigen encodes a protein of 152 amino acids that contains features characteristic of the EGF superfamily. Two hydrophobic regions, corresponding to a putative signal sequence and transmembrane domain, flank a core of amino acids encompassing six cysteine residues and two putative N-linked glycosylation sites. Epigen shows 24-37% identity to members of the EGF superfamily including EGF, transforming growth factor alpha, and Epiregulin. Northern blotting of several adult mouse tissues indicated that Epigen was present in testis, heart, and liver. Recombinant Epigen was synthesized in Escherichia coli and refolded, and its biological activity was compared with that of EGF and transforming growth factor alpha in several assays. In epithelial cells, Epigen stimulated the phosphorylation of c-erbB-1 and mitogen-activated protein kinases and also activated a reporter gene containing enhancer sequences present in the c-fos promoter. Epigen also stimulated the proliferation of HaCaT cells, and this proliferation was blocked by an antibody to the extracellular domain of the receptor tyrosine kinase c-erbB-1. Thus, Epigen is the newest member of the EGF superfamily and, with its ability to promote the growth of epithelial cells, may constitute a novel molecular target for wound-healing therapy.

Amino Acid Sequence↗

B cell- and monocyte-activating chemokine (BMAC), a novel non-ELR alpha-chemokine.

A novel alpha-chemokine, designated KS1, was identified from an EST database of a murine immature keratinocyte cDNA library. The EST has 94% similarity to a recently cloned human gene, BRAK, that has no demonstrated function. Northern analysis of mouse and human genes showed detectable mRNA in brain, intestine, muscle and kidney. Tumour panel blots showed that BRAK was down-regulated in cervical adenocarcinoma and uterine leiomyoma, but was up-regulated in breast invasive ductal carcinoma. KS1 bound specifically to B cells and macrophages, as well as two B cell lines, CESS and A20, and a monocyte line, THP-1. KS1 showed no binding to naive or activated T cells. In addition, KS1 stimulated the chemotaxis of CESS and THP-1 cells but not T cells. The s.c. injection of KS1 creates a mixed inflammatory response in Nude and C3H/HeJ mice. The above data indicates that KS1 and its human homologue represents a novel non-ELR alpha-chemokine that may have important roles in trafficking of B cells and monocytes. We propose the name B cell- and monocyte-activating chemokine (BMAC) for this molecule to reflect the described biological functions.

Amino Acid Sequence↗

Production of the 19-kDa antigen of Mycobacterium tuberculosis in Escherichia coli and its purification.

The 19-kDa antigen (19Ag) of Mycobacterium tuberculosis (Mt) is a lipoprotein which is released from the organism during growth. In order to study the possible involvement of this antigen in the host protective response against Mt infection, it would be helpful to obtain high-level production of 19Ag from a recombinant organism. We have found that overexpression of the native 19Ag gene in Escherichia coli or yeast leads to products which are aggregated and insoluble. By site-directed mutagenesis of the 19Ag lipoprotein leader sequence, we have generated a mutant gene which directs the production of 19Ag into the periplasmic space of E. coli, from where it can be easily purified in high yield. 19Ag obtained from this mutant construct lacks the lipid-modified N-terminal Cys residue found in the native 19Ag, and is not glycosylated, but is otherwise indistinguishable from 19Ag isolated from Mt culture supernatant.

Amino Acid Sequence↗

Homologs of Mycobacterium leprae 18-kilodalton and Mycobacterium tuberculosis 19-kilodalton antigens in other mycobacteria.

Most of the antigens of Mycobacterium leprae and M. tuberculosis that have been identified are members of stress protein families, which are highly conserved throughout many diverse species. Of the M. leprae and M. tuberculosis antigens identified by monoclonal antibodies, all except the 18-kDa M. leprae antigen and the 19-kDa M. tuberculosis antigen are strongly cross-reaction between these two species and are coded within very similar genes. Studies of T cell reactivity against mycobacterial antigens have indicated that M. tuberculosis bears epitopes that are cross-reactive with the M. leprae 18-kDa antigen, but attempts to identify an 18-kDa antigen-like protein or protein coding sequence in M. tuberculosis have been unsuccessful. We have used a combination of low-stringency DNA hybridization and polymerase chain reaction techniques to identify, isolate, and sequence genes from M. avium and M. intracellulare that are very similar to the 18-kDa antigen gene of M. leprae and others that are homologs of the 19-kDa antigen gene of M. tuberculosis. Unlike M. leprae, which contains a single 18-kDa antigen gene, M. avium and M. intracellulare each have two 18-kDa antigen coding sequences. Although the M. leprae, M. avium, and M. intracellulare 18-kDa antigen genes are all very similar to one another, as are the M. tuberculosis, M. avium, and M. intracellulare 19-kDa antigen genes, we have been unable to detect any 18-kDa antigen-like coding sequences in DNA from M. tuberculosis.

Amino Acid Sequence↗

Immunologic and structural relatedness of the integrin beta 7 complex and the human intraepithelial lymphocyte antigen HML-1.

We recently cloned the newest human integrin beta subunit, termed beta 7, from a cDNA library constructed from SEA-activated T lymphocytes. In this communication, we report on the structure of the human integrin beta 7 protein complex determined using a rabbit anti-beta 7 peptide antibody raised to an N-terminal 22 amino acid residue sequence deduced from the human beta 7 subunit cDNA. The beta 7 subunit (Mr 116,000) expressed on PHA lymphoblasts associates with a single major alpha subunit (alpha H) that is distinct from the prominent T cell marker, integrin alpha 4. The alpha H subunit (Mr 180,000 nonreduced) displays a distinctive shift in size on reduction to an apparent Mr of 150,000. We show that these structural properties of the integrin beta 7 complex are shared with the cell surface antigen HML-1 found highly expressed on T cells which populate the intestinal epithelium and are proposed to be involved in mucosal immunity. Sequential immunoprecipitation and Western blotting demonstrate identity or close homology between the alpha H beta 7 and HML-1 proteins.

Amino Acid Sequence↗

Genetic control of immune responses to the 18-kDa protein of Mycobacterium leprae. Different TH1 subsets may be involved in proliferative and delayed-type hypersensitivity responses.

In vitro and in vivo responses to the 18-kDa protein of Mycobacterium leprae have been analysed in different strains of mice. Lymphocytes from BALB/cJ (H-2d), BALB.B (H-2b), B10.BR (H-2k), and B10.M (H-2f) mice primed with 18-kDa protein yielded high T cell proliferative responses, while those from C57BL/10J (H-2b) mice yielded lower responses. Both H-2 and non-H-2 genes contributed to the magnitude of responsiveness. F1 mice from high and low responder strains showed high responsiveness to the 18-kDa protein. Supernatants from lymph node cell cultures prepared from 18-kDa protein-immunised BALB/cJ, B10.BR, and C57BL/10J mice contained IL-2 but no IL-4, indicating that activated T cells from both high and low responder mice were of a TH1 phenotype. Cell cultures from low responder C57BL/10J mice produced less IL-2 than those from high responders. The low responsiveness to the 18-kDa protein in proliferative assays might be due to a low frequency of antigen-specific T cells in the C57BL/10J mouse strain. BALB/cJ, C57BL/10J, and F1 (BALB/cJ x B10.BR) mouse strains were tested for in vivo DTH reactions to the 18-kDa protein. All strains, including C57BL/10J, were high DTH responders. Although DTH effector cells and 18-kDa protein-specific proliferative T cells belong to the TH1 subset, our data comparing high and low responder status indicate that distinct TH1 subpopulations are stimulated in response to the 18-kDa protein of M. leprae.

Animals↗

Antibody responses to the 18-kDa protein of Mycobacterium leprae in leprosy and tuberculosis patients.

The 18-kDa protein of Mycobacterium leprae, as recognized by the monoclonal antibody L5, has a restricted species distribution, being confined to M. leprae and M. habana. We have developed a solid-phase ELISA using purified, recombinant M. leprae 18-kDa protein and compared the serological responses of Nepali leprosy and tuberculosis patients and endemic control subjects to the protein and the M. leprae phenolic glycolipid-I (PGL-I). Few control subjects had anti-18-kDa antibodies. A small proportion of paucibacillary (PB) leprosy and 42% of multibacillary (MB) leprosy patients had IgG anti-M. leprae antibodies. A similar proportion (47%) of Nepali tuberculosis (TB) patients were seropositive, and IgG anti-18-kDa antibody levels were significantly higher in MB and TB patients than in control subjects. By comparison, IgM anti-PGL-I antibodies were detected in 88% of MB leprosy patients and only 7% of TB patients. The possible reasons for the 18-kDa protein seroreactivity in TB patients are discussed, and the anti-18-kDa assay is compared with other antibody assays for protein and nonprotein antigens of M. leprae. It is concluded that the sensitivity and specificity of the anti-M. leprae 18-kDa ELISA are insufficient for the assay to be of clinical utility in leprosy patients.

Adolescent↗

Immune responses to the 18-kDa protein of Mycobacterium leprae. Similar B cell epitopes but different T cell epitopes seen by inbred strains of mice.

Antibody responses to the 18-kDa protein of Mycobacterium leprae have been analyzed in different strains of mice. High, intermediate, and low responder strains have been identified and these response patterns show clear linkage to genes encoded in the H-2 complex. Three peptides, residues 1-50, 51-100, and 101-148 have been synthesized, as well as a series of 20-mer peptides, which span the entire 18-kDa protein. Repeated immunization of different strains of mice with the 18-kDa protein resulted in IgG responses to epitopes found on all three synthetic peptides. Immunization of BALB/cJ and B10.BR mice, two high responder strains, with 18-kDa protein resulted in high levels of IgG antibody to epitopes found on peptides 1-20, 16-35, 31-50, 46-65, and 76-95. B10.BR mice also contained IgG that bound peptide 61-80 and BALB/cJ mice produced IgG that bound peptide 91-110. Although B10.BR mice produced IgG that bound the 50-mer peptide 101-148, this IgG was not detected by binding to peptides 91-110, 106-125, 121-140, and 131-148. Immunization of B10.BR mice with individual overlapping 20-mer peptides as Ag revealed that peptides 1-20, 16-35, 31-50, and 76-95 elicited high titers of IgG that bound both the immunizing peptide as well as 18-kDa protein. As these peptides induce antibody synthesis they must contain both B cell and T cell epitopes. By contrast, immunization of BALB/cJ mice with the same 20-mer peptides, all of which contain B cell epitopes for this strain, failed to elicit IgG responses with one exception. Peptide 91-110 induced IgG that bound peptide 91-110, but not the intact 18-kDa protein. We conclude that peptides 1-20, 16-35, 31-50, and 76-95 either lack T cell epitopes for BALB/cJ mice, or activate different T cell subpopulations in the two strains. We suggest that the induction of IgG responses to small peptide Ag is an in vivo assay of the activity of Th2 cell subpopulations.

Animals↗

The mapping of an antibody-binding region on the Mycobacterium tuberculosis 19 kilodalton antigen.

To localize the epitopes of four independently derived murine mAb IT-10, IT-12, IT-16, and IT-19 on the 19-kDa Ag protein of Mycobacterium tuberculosis, expression plasmids were constructed containing deletions of the gene encoding the 19-kDa protein. Reaction of the 4 mAb with Western blots of the truncated recombinant proteins revealed two epitope specificities in the recognition of the 19-kDa protein. IT-10 was found to be dependent only on the presence of amino acids surrounding the first cysteine residue, whereas IT-12, IT-16, and IT-19 all required the presence of both the first and third cysteine residues. These two cysteine residues are separated by 135 amino acids, and are considered to be brought together by tertiary folding of the protein to form an assembled epitope for IT-12, IT-16, and IT-19. These three mAb demonstrated differing sensitivities to the modification of reduced 19-kDa protein using iodoacetamide: a treatment that should have prevented the reformation of disulfide bonds within the protein. This result suggests that, although IT-12, IT-16, and IT-19 appear to be specific for the same epitope, there are probably fine-specificity differences in this recognition. IT-10 was not sensitive to the absence of disulfide bonds within the 19-kDa protein, suggesting that the epitope is not conformationally sensitive, and is likely to be linear in nature.

Antigens, Bacterial↗

The use of a 'universal' yeast expression vector to produce an antigenic protein of Mycobacterium leprae.

This report describes the use of a recombinant yeast expression vector to synthesize and secrete the Mycobacterium leprae 18 kDa antigenic protein. The protein is secreted with a short hydrophilic 'flag' octapeptide fused to its amino-terminus. The fusion protein can be purified directly from yeast culture supernatant through an anti-flag antibody affinity column and the flag octapeptide removed using enterokinase. The method provides a simple and rapid means of obtaining recombinant 18 kDa antigen in quantities suitable for immunological studies.

Antigens, Bacterial↗

Expression of functional human interleukin-2 receptors in murine interleukin-3-dependent cells.

A murine recombinant retrovirus containing the cDNA encoding the human p55 interleukin-2 (IL2)-binding protein was used to insert this gene into a murine interleukin-3 (IL3)-dependent cell line, FD.C/1. Virus-infected cells, maintained in medium supplemented with IL3, expressed human p55 on the cell surface and readily adapted to growth using human IL2. In the presence of human IL2, the synthesis of the endogenous murine p55 binding protein was induced in FD.C/1 cells, making it difficult to determine whether the human p55 protein was actively involved in the process of growth signal transduction. A cloned cell line, FD.huIL2R-2, was identified which grew in the presence of human IL2 but which had lost the ability to synthesize murine p55 protein. Growth of this clone was inhibited by the monoclonal antibody 2A3 which specifically blocked binding of human IL2 to the human p55 binding protein. Analysis of restriction enzyme digests of FD.huIL2R-2 cell DNA revealed that a rearrangement of a murine p55 gene had occurred, implying that virus infection had resulted in the integration of retroviral DNA at a site close to or within a murine p55 gene. If IL2 signal transduction involves binding to a surface heterodimeric receptor for IL2, it is argued that FD.huIL2R-2 cells contain an IL2 receptor complex of murine p70 and human p55 IL2-binding proteins. Alternatively, it is possible that integration of human p55 DNA into a site close to a murine p55 gene may lead to a hybrid p55 IL2-binding protein. If FD.huIL2R-2 cells express murine p70 IL2-binding protein as part of the receptor complex, the inability of cells to grow in murine IL2 implies that IL2 binding to p70 protein alone is insufficient for a growth signal in these cells. FD.huIL2R-2 cells grow at rates similar in IL3- or human IL2-dependent states. It is likely therefore that the biochemical pathways that control each of these lymphokine-dependent growth states are very similar.

Animals↗

Expression of genes in cloned murine cell lines that can be maintained in both interleukin 2- and interleukin 3-dependent growth states.

Two cloned murine cell lines, FD.C/1 and 32Dcl-23 exhibit switching of lymphokine-dependent growth states. The bone marrow-derived FD.C/1 and 32Dcl-23 cell lines are normally grown in culture medium supplemented with interleukin 3 (IL3). The replacement of IL3 with interleukin 2 (IL2) in the medium results in an increase in IL2 receptor expression in FD.C/1 and 32Dcl-23 cells and the switching of cells to an IL2-dependent growth state. We have compared patterns of protein and phosphoprotein synthesis, as well as the expression of the c-abl, c-ras, c-myb, and c-fos oncogenes in these cell lines maintained in IL3- and IL2-dependent growth states. The synthesis of a series of proteins and phosphoproteins are identified with each of the lymphokine-dependent growth states. All of the oncogenes examined are expressed in both IL2- and IL3-dependent cells and are not altered by phenotypic changes in lymphokine growth dependence. The relationship of oncogene expression to intracellular pathways regulated by lymphokine-receptor interactions is considered.

Animals↗

Induction of antibody responses to influenza virus in human lymphocyte cultures. I. Role of interleukin 2.

The in vitro T cell-dependent antibody response of human lymphocytes to influenza virus X31 was used to study the role of T cell-derived lymphokines in antigen-specific responses. Supernatant from cultures of phytohaemagglutinin-stimulated, pooled human tonsil cells (PHA-MLR) was capable of replacing T cells and inducing T-depleted tonsil cells to secrete influenza-specific antibody. The T cell-replacing activity of PHA-MLR supernatant co-purified with interleukin 2 (IL 2) on Ultrogel AcA54 gel filtration and reversed phase-high performance liquid chromatography. PHA-MLR supernatant and IL 2 also enhanced B cell proliferation induced by anti-mu or Staphylococcal aureus strain Cowan I (SAC). A murine monoclonal antibody directed against the human IL 2 receptor (Mab 2A3) was used to completely block the enhancement of influenza-specific antibody production mediated by PHA-MLR supernatant, purified IL 2, and recombinant human IL 2. Mab 2A3 did not affect the T-independent B cell proliferation induced by anti-mu or SAC, but abrogated the enhancing effect of the PHA-MLR supernatant and IL 2 in this culture system. Immunofluorescence studies failed to demonstrate binding of Mab 2A3 to B cells activated by the X31 influenza virus and IL 2, or by SAC. By using Mab 2A3 to mask out IL 2 effects in the influenza-specific culture system, no other B cell differentiating activities were revealed in supernatants from lymphocytic cultures stimulated with a variety of mitogens. Thus, our results indicate that the production of influenza-specific antibodies by T-depleted human lymphocyte cultures is absolutely dependent on the presence of both antigen and IL 2.

Antibodies, Monoclonal↗

Partial characterisation of the high and low molecular weight forms of P388D1-derived interleukin 1.

The murine macrophage-derived cell line P388D1 secretes the lymphokine interleukin 1 (IL-1) when stimulated by a variety of agents. When stimulated by bacterial lipopolysaccharide (LPS) the cells release IL-1 in both high and low molecular weight (m.w.) forms. The proportion of high m.w. IL-1 is reduced when IL-1-containing supernatants are concentrated by ammonium sulfate precipitation subsequent to hollow-fiber filtration. The high m.w. form can be converted to the low m.w. form by proteolysis, reduction and alkylation, or chromatography in a dissociating solvent. The low m.w. form remains as such, even when reconcentrated in fetal calf serum-containing medium. The high m.w. form thus likely consists of a complex between low m.w. IL-1 and another protein secreted by the P388D1 cell line.

Alkylation↗

Biochemical comparison of murine colony-stimulating factors secreted by a T cell lymphoma and a myelomonocytic leukemia.

Factors that stimulate the proliferation and differentiation of murine bone marrow cells have been purified from a cloned T cell lymphoma, LBRM-33, and a cloned myelomonocytic leukemia cell line, WEHI-3. These colony-stimulating factors (CSF) have been purified by sequential fractionation by using salt precipitation, gel filtration, anion and cation exchange chromatography, and high pressure liquid chromatography. Both LBRM-33 and WEHI-3 cells secrete a CSF species with similar chemical and biologic properties. This CSF species appears to exist in two forms, termed CSF-2 alpha and CSF-2 beta, both of which stimulate the growth of bone marrow cells in the granulocyte, macrophage, megakaryocyte, mast cell, and erythrocyte lineages, as well as the growth of a CSF-dependent cell line, FDC-P2. These properties of CSF-2 alpha and -2 beta are similar to those reported for interleukin 3, hematopoietic cell growth factor, mast cell growth factor, and persisting cell growth factor. However, LBRM-33 cells secrete another CSF species, not produced by WEHI-3 cells. This CSF species, unique to LBRM cells, is termed here CSF-2 gamma and it stimulates the proliferation of granulocytes and macrophages from bone marrow but does not support the growth of FDC-P2 cells.

Animals↗

Constitutive production by the WEHI-3 cell line of B cell growth and differentiation factor that co-purifies with interleukin 1.

The myelomonocytic cell line WEHI-3 produces constitutively a factor that affects the growth and differentiation of murine B cells in culture. This cell line also secretes colony-stimulating factors (CSF), interleukin 1 (IL 1) but not interleukin 2. Sequential purification through AcA54 gel filtration, DEAE-Sephacel ion exchange chromatography, and buffer electrofocussing clearly resolved the B cell growth and differentiation factor (BGDF) from the CSF activities but failed to separate BGDF from IL 1. The WEHI-3-derived material responsible for BGDF/IL 1 activity, however, exhibited different behavior on DEAE chromatography (elution at 175 mM NaCl) to that reported for IL 1 from the P388D1 cell line (elution at 50 mM NaCl). B cell growth and differentiation could be induced by WEHI-3 BGDF/IL 1 in cultures of normal spleen cells depleted of T cells and adherent cells but not in cultures of spleen cells from B cell-deficient CBA/N mice, even though thymocytes from such mice displayed a normal response to IL 1. Significant B cell proliferation induced by BGDF/IL 1 was apparent only in the presence of submitogenic concentrations of anti-mouse IgM antibodies, but under these conditions few antibody-forming cells (AFC) were generated. In contrast, B cell differentiation to AFC occurred in the presence of the factor alone, and this response was inhibited by anti-IgM. Thus there appeared to be a reciprocal relationship between B cell proliferation and differentiation induced by BGDF/IL 1. The significance of these results is discussed in the light of other recent studies of BGDF.

Animals↗

In-vivo modulation of thymus-derived lymphocytes with monoclonal antibodies in mice. I. Effect of anti-Thy-1 antibody on the tissue distribution of lymphocytes.

A procedure is described for the in vivo removal of all detectable T lymphocytes from spleen and lymph nodes in mice. A single intraperitoneal injection of monoclonal anti-Thy-1 antibody into mice leads to rapid depletion of functional T cells from peripheral lymphoid organs, but not thymus. The extent of T-cell depletion is dependent on the cytotoxic titre of the anti-Thy-1 antibody used. Antibody with a median cytotoxic titre greater than 10(6) causes the complete removal of cells bearing Thy-1, Lyt-1 and Lyt-2 surface antigens from peripheral lymphoid populations in 3 days. Eight days after treatment Thy-1+, Lyt-1+ and Lyt-2+ cells begin to reappear in these organs. Splenic B cells, assayed by the expression of surface immunoglobulin (sIg) and by mitogenic responsiveness to bacterial lipopolysaccharide (LPS), are not affected by this treatment. The monoclonal anti-Thy-1 antibody does not appear to penetrate thymus tissue and bind to thymocytes. Anti-Thy-1 antibody, but not F(ab')2 is required for in-vivo T-cell depletion. These findings indicate that anti-Thy-1 antibody causes the removal of Thy-1+ cells from peripheral lymphoid tissue, and as the circulating levels of anti-Thy-1 antibody decrease, cells from the thymus repopulate the thymus-dependent areas of the depleted lymphoid organs.

Animals↗