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W C Davis

Publications and source records attributed to W C Davis.

At least 127 records · Page 7Linked to original sources

Members of the novel WC1 gene family are differentially expressed on subsets of bovine CD4-CD8- gamma delta T lymphocytes.

CD4-CD8- gamma delta T cells of ruminants uniquely express a 220-kDa surface Ag recognized by several mAbs clustered as WC1. We recently reported the isolation of a cDNA clone encoding a WC1 Ag. Southern blotting suggested that the bovine genome contains multiple sequences highly related to the isolated WC1 cDNA. Here, we demonstrate that some of the clustered WC1 mAbs stain predominantly nonoverlapping subsets of bovine CD4-CD8- gamma delta T cells. By the isolation of two additional cDNA clones encoding molecules highly related to the original WC1 Ag, we provide a molecular basis for this phenomenon. Cells transfected with cDNAs encoding individual WC1 Ags are differentially recognized by various WC1 mAbs. Thus, expression of members of the WC1 gene family divides bovine CD4-CD8- gamma delta T cells into phenotypical subsets. Field inversion gel electrophoresis revealed that all WC1 genes map to a single, large (> 1 Mbp) Notl fragment. Although the function of WC1 remains unknown, it likely involves interaction with ligands that originate from a similarly complex genetic system.

Amino Acid Sequence↗

Evidence for the expression of three different BoLA-class II molecules on the bovine BL-3 cell line: determination of a non-DR non-DQ gene product.

Studies were conducted to determine the reactivity of six monoclonal antibodies specific for major histocompatibility complex class II molecules expressed on a bovine B cell line homozygous for BoLA-DR and BoLA-DQ alleles. Direct immunoprecipitation, serial immunodepletion experiments, and two-dimensional gel electrophoresis revealed that these antibodies reacted with three different molecules. Bovine orthologues of HLA-DR were recognized by three monoclonal antibodies--H34A, TH12A, and TH14B. Orthologues of HLA-DQ were characterized by two other monoclonal antibodies, TH22A and TH81A. A third BoLA class II antigen, neither DR nor DQ was revealed by the last monoclonal antibody H42A. The relation of this molecule to known molecules in humans and other species remains to be established. However, cumulative data suggest that the determinant is expressed on a molecule related to HLA-DP.

Alleles↗

Functional and phenotypic characterization of WC1+ gamma/delta T cells isolated from Babesia bovis-stimulated T cell lines.

Functional studies with WC1+ gamma/delta T cell lines were performed to clarify the role of this subpopulation of gamma/delta T cells in the in vitro immune response to Babesia bovis. As CD4+ T cells decreased and gamma/delta T cells increased in B. bovis-stimulated T cell lines, antigen-specific proliferation declined to background levels. One irradiated gamma/delta T cell line inhibited proliferation of autologous Th1 cells, although unirradiated gamma/delta T cells either synergized with or had no effect on Th cell proliferation. gamma/delta T cells were not cytolytic for bovine alpha/beta T cells, but expressed natural killer (NK)-like cytotoxicity when assayed on xenogeneic NK-sensitive target cells. The gamma/delta T cells were IL-2 dependent and expressed IFN-gamma and TNF-alpha, but not TNF-beta, IL-2, or IL-4 mRNA. Together, these results raise the possibility that WC1+ gamma/delta T cells respond in vitro to autoantigens present on CD4+ T cells or to cytokines secreted by activated CD4+ T cells, resulting in modulation of the CD4+ T cell response and outgrowth of the gamma/delta T cells in parasite-stimulated lines.

Animals↗

Differential distribution of gamma delta T-cell receptor lymphocyte subpopulations in blood and spleen of young and adult cattle.

A panel of monoclonal antibodies to bovine leukocyte differentiation molecules was used to evaluate peripheral blood and splenic lymphocytes from cattle of various ages. The major population of peripheral blood lymphocytes from neonatal calves was gamma delta T-cell receptor (TCR1) positive, as determined by TCR1-N12 expression. TCR1-N12+ lymphocytes were decreased in number in older calves, and were lowest in adult cattle. The major subpopulation of TCR1-N12+ cells from peripheral blood coexpressed WC1, but not BoCD2. A small subpopulation of peripheral blood TCR1-N12+ cells from cattle of all ages coexpressed BoCD2, but not WC1. The TCR1-N12+ BoCD2+ lymphocytes made up the largest TCR1-N12+ lymphocyte subpopulation in spleens of both calves and adults. The TCR1-N12+WC1+ splenic lymphocytes were present as a small population. The data indicate that two subpopulations of TCR1+ lymphocytes are present in cattle of all ages. These two subpopulations are differentially distributed between blood and spleen, with TCR1-N12+WC1+ lymphocytes predominating in blood, and TCR1-N12+BoCD2+ cells predominating in spleen.

Aging↗

Quantitative characterization of the CD5 bearing lymphocyte population in the peripheral blood of normal sheep.

Quantitative characterization of the circulating CD5+ lymphocyte population in sheep was performed using monoclonal antibodies against ovine CD5, ovine CD2, and ovine sIgM. A total of fifteen sheep were examined biweekly over a period of 2.5 months. The total CD5+ population was measured using single color flow cytometry, while CD5+ cells co-expressing sIgM or CD2 were determined by two color flow cytometric analysis. The total CD5+ cell population comprised 31.5-65.4% of gated lymphocytes with a mean value of 44.9%. Absolute CD5+ cell numbers varied from 1075 to 8007 cells mm-3, with a mean value of 3149 cells mm-3. The mean proportion of CD5+ B-cells was 4.0%, with a mean absolute value of 270 cells mm-3. The mean proportion of CD5+/CD2+ cells was 12.1% while that of CD5+/CD2- cells was 28.6%, corresponding to mean absolute values of 727 and 1794 cells mm-3 respectively. Significant variation in CD5+ lymphocyte numbers in all individual animals occurred over the time span of the study. The results of this study provide a baseline from which to accurately assess CD5+ cell populations in neoplastic and infectious diseases.

Animals↗

Correlation between monoclonal antibody reactivity and expression of CD4 and CD8 alpha genes in the horse.

Equine peripheral blood lymphocytes (PBL) were enriched by positive selection using panning with a mixture of monoclonal antibodies against putative equine CD4 (Equine Leucocyte Antigen Workshop antibodies WS 1 and WS 72), or CD8 molecules (Workshop antibodies WS 12, WS 49, and WS 74). RNA was extracted from CD4 enriched cells (99% purity), from CD8 enriched cells (69% purity), from peripheral blood lymphocytes, and from neonatal equine thymus. RNA extracted from equine granulocytes and from equine kidney served as negative control. The RNA was electrophoresed in agarose and transferred to nylon membranes. Northern blots were hybridized with human and mouse cDNA probes for CD4 and CD8 alpha. The human CD4 probe detected a 2.9 kb RNA transcript in equine PBL, CD4 enriched lymphocytes, and thymocytes. The human CD8 alpha probe detected a 2.0 kb transcript in RNA from equine CD8 alpha enriched lymphocytes and thymocytes, but not from PBL or CD4 enriched lymphocytes. Mouse cDNA probes for CD4 and CD8 did not react with equine RNA. Results of hybridizations using the human probes support the assignment of the CD4 and CD8 specificities to the antibodies listed above. The results also suggest that the equine CD4 and CD8 alpha genes are more closely related to the human than to the murine counterparts.

Animals↗

Summary of first round cluster analysis: complete antibody panel.

The reactivities of 141 monoclonal antibodies (mAbs) with 60 target cell types or lines were analysed by flow cytometry and the data subjected to statistical clustering. mAbs were assigned to 23 clusters by statistical similarity and information on specificity supplied by the contributor. Clustered mAbs were examined in more detail in the second round of workshop analyses.

Animals↗

Analysis of monoclonal antibodies reactive with the porcine CD2 antigen.

As result of the First International Swine CD Workshop, six monoclonal antibodies (mAbs) (numbers 014, 023, 024, 057, 128, and 130) clustered closely to the internal standard anti-porcine CD2 mAb, MSA4. Despite the close clustering, the cluster was split into two subgroups. To further characterize the relationship between these mAbs, they were used in flow cytometry to inhibit binding of MSA4 to porcine lymphocytes. mAbs 014 (1038-8-31), 023 (MAC83), 024 (MAC80), 057 (PG168), and 128 (MSA4) completely inhibited the binding of MSA4, mAb 130 (MSA2) failed to inhibit MSA4 binding. On dual parameter flow cytometry comparing MSA2 with MSA4, all MSA2+ cells were MSA4+, two thirds of the MSA4+ cells were MSA2-. We conclude that five of the mAbs bind to the same or a closely related epitope on porcine lymphocytes. mAb 130 appears to have aberrantly clustered with the CD2 group of mAb.

Animals↗

Analysis of monoclonal antibodies reactive with the porcine CD4 antigen.

As result of the First International Swine CD Workshop, four monoclonal antibodies (mAb) (#002, 054, 118, and 127) clustered closely to the internal standard anti-porcine CD4 mAb, 74-12-4. To further characterize the relationship between these mAb, they were used in flow cytometry to inhibit binding of 74-12-4 to porcine lymphocytes. mAb #002 (74-12-4) and #054 (PT90) completely inhibited, while mAb #127 (10.2H2) and #118 (b38c6) partially inhibited (57% and 77% respectively), the binding of 74-12-4. Furthermore, none of the mAbs bound to a 74-12-4 negative strain of pigs. We conclude that the four mAb bind to the same, or a closely related, epitope on porcine lymphocytes.

Animals↗

Competitive binding analysis of monoclonal antibodies reactive with porcine alveolar macrophages using anti-CD14 and anti-CD18.

Four monoclonal antibodies (mAb) from the myeloid subset panel of the First International Swine CD Workshop (74-22-15, DH59B, PM16-6, and MUC21A) were analyzed using competitive inhibition studies with anti-human CD14 (My4) and anti-human/anti-porcine CD18 (MHM23) on porcine alveolar macrophages. Results suggested that none of the mAb tested recognized CD14 or CD18 on porcine alveolar macrophages. Additionally, the cross-reactivity of My4 with porcine alveolar macrophages was established.

Animals↗

Report on the behaviour of monoclonal antibodies in the First International Pig CD Workshop identifying the Null cell families.

Clustering analyses were carried out on data from five independent laboratories testing 22 monoclonal antibodies (mAbs) reacting with CD2-sIg-lymphocytes on 14 pig blood and/or tissue lymphoid target cells using cytofluorometry. This was coupled with extensive further studies on blood lymphocytes from normal and thymectomised SLAb/b inbred pigs. These mAbs formed two groups: those mainly identifying the large blood-borne thymus-dependent Null T cells (N) and those reacting with tissue and a small number of blood-borne thymus-independent lymphocytes (N'). Based on their tissue cell reaction patterns, the 10 N' mAbs formed three main groups: N'1A and B; N'2A and B; and N'3. The 12N mAbs fell into four groups N4-N7; N6 was divided into subgroups A-D. One N' (032) and two N mAbs (010 and 063) were unclustered. Based on these data, swine workshop cluster numbers were designated to groups N5 (021, 022 and 059) as SWC4, N6 (061 and 117) as SWC5 and N7 (020 and 141) as SWC6, the latter exceptionally as a single antibody, MAC320, since it is the 'type' mAb identifying effectively all blood Null T lymphocytes. Future research and workshops will have to define with a wider range of techniques the relationships, molecular properties and functional roles of the several new, perhaps novel, antigens identified by this family of fascinating, as yet still poorly defined, mAbs.

Animals↗

CD11/CD18 panel report for swine CD workshop.

Five monoclonal antibodies (mAbs), PNK-I (W #037), H20A (W #077), MUC76A (W #078), MUC93A (W #079) and MHM23 (W #136) of CD11/18 panels reacted with 80-96% of porcine PBMC and PMN. Epitope mapping studies by competitive binding of mAb by flow cytometric analysis based on PNK-I as CD18 epitope defining antibody resulted H20A and MHM23 mAbs bind to the same shared epitope as PNK-I, but MUC76A and MUC93A mAbs were distinct from PNK-I. Thus, PNK-I, H20A and MHM23 were designated as CD18a mAbs.

Animals↗

Analyses of monoclonal antibodies reactive with porcine CD44 and CD45.

Twenty-six monoclonal antibodies (mAbs), assigned to the CD44/CD45 section of the First International Swine CD Workshop, were compared for their reactivity against a selected group of target cells by one- and two-color flow cytometric analysis. Based on staining and reactivity patterns the 26 mAbs were assigned to six groups, group F1 mAbs were designated CD44 mAbs; and groups F2 and F3 as CD45 mAbs. With the information available, a CD designation could not be given to the mAbs in groups F4, F5 or F6 consisting of four, three and four mAbs each, respectively. The reactivity of all six mAbs in group F1 (MAC35, 25-32, PORC24A, H22A, BAG40A, and BAT31A) was blocked by soluble porcine CD44. One mAb in this group (MAC325) reacted with a cell surface protein with a molecular weight of 80 kDa and was designated as CD44; the other five mAbs were designated as wCD44 because no molecular weight was known. Blocking experiments utilizing a cross reactive anti-human CD44 (mAb Z062) allowed the definition of the wCD44a epitope recognized by mAbs PORC24A and H22A. The group F2 mAbs (74-9-3; MAC323; K252.1E4; and 2A5) were designated as CD45 based on their broad reactivity pattern with lymphoid and myeloid cells and their ability to immunoprecipitate three polypeptides with an apparent molecular weight of 226, 210 and 190 kDa. The F3 mAbs (MAC327; MAC326; 3a56 and -a2) were designated as CD45R based on their restricted reactivity against lymphoid and myeloid target cells, and their ability to immunoprecipitate either two polypeptides with an apparent molecular weight of 226 and 210 kDa (mAbs MAC327 and MAC326) or a single polypeptide with an apparent molecular weight of 210 kDa (mAbs-a2 and 3a56). Sequential immunoprecipitation analyses confirmed the relatedness of the F2 and F3 group mAbs. The work conducted for this first workshop led to the definition of six mAbs specific for CD44, four mAbs specific for CD45, and four mAbs specific for CD45R which should prove to be very valuable reagents for the study of the porcine immune system.

Animals↗

Monoclonal antibodies to the equine CD2 T lymphocyte marker, to a pan-granulocyte/monocyte marker and to a unique pan-B lymphocyte marker.

Murine monoclonal antibodies, HB88A, B29A and DH59B separately identify the CD2 T lymphocyte molecule, a unique pan-B lymphocyte surface marker and a pan-granulocyte/monocyte surface molecule, respectively, in the horse. Specificity was shown by two-color immunofluorescent flow cytometry and immunofluorescent microscopy. MAb HB88A reacted with a 52 kDa pan-T lymphocyte molecule present on 75% +/- 7 of peripheral blood lymphocytes (PBL) (n = 15 horses). It also reacted with lymphocytes restricted to T lymphocyte dependent areas of lymph node and spleen. Specificity of mAb HB88A to CD2 was demonstrated by its reactivity to COS7 cells which expressed a transfected 1.5 kb equine lymphocyte c-DNA clone having 77.5% overall sequence homology with human CD2 c-DNA. MAb B29A reacted with a pan-B lymphocyte specific cell surface complex, 143, 72, 50, 40, 27 and 14.5 kDa, present on 19% +/- 7 of PBL (n = 15 horses). This complex has not been described in the horse or other species. MAb DH59B reacted with a 96 kDa pan-granulocyte/monocyte specific surface protein and identified macrophages and Kupffer cells in equine tissue sections. Together these mAbs can be used to identify and quantitate the major constituents of equine leukocytes.

Animals↗

Expression of functional protease and subviral particles by vaccinia virus containing equine infectious anaemia virus gag and 5' pol genes.

Cells infected with vaccinia viruses expressing the equine infectious anaemia virus (EIAV) gag gene (VGag) or gag plus the 5' pol encoding protease (VGag/PR) were evaluated with monoclonal antibody to a p26 capsid protein linear epitope (QEISKFLTD). Both recombinant viruses expressed Gag precursor protein (55K) whereas only VGag/PR expressed a detectable Gag-Pol fusion protein (82K) with a functional protease, shown by subviral particles containing processed p26. Horses inoculated with VGag/PR produced antibodies reactive with EIAV Gag proteins.

Amino Acid Sequence↗

Corticosteroid immunosuppression and monoclonal antibody-mediated CD5+ T lymphocyte depletion in normal and equine infectious anaemia virus-carrier horses.

The immune control of chronic equine infectious anaemia (EIA) lentiviral infection was investigated by specifically depleting CD5+ T lymphocytes in vivo with monoclonal antibody (MAb) or by immunosuppression with corticosteroids. MAb was given at 25 to 50 mg/day intravenously for 11 days. Murine IgG1 anti-equine CD2 MAb (n = 2 horses) or IgG1 (n = 2) and IgG2a control MAb (n = 2 normal; 2 EIA-infected) did not deplete CD2+ T lymphocytes in horses. Horses given murine IgG2a anti-CD5 MAb HB19A (n = 4 normal; 5 EIA-infected) had depletion of peripheral blood CD5+ T lymphocytes during treatment. These horses, however, maintained a residual population of CD2+ T lymphocytes [15 (+/- 3)% of pretreatment numbers] that did not express CD5 but expressed either CD4 or CD8. These antigenically modulated CD5- T lymphocytes responded normally in vivo to intradermal inoculation with phytohaemagglutinin and in vitro to allogeneic leukocyte stimulation in one-way mixed lymphocyte reactions. EIA virus-infected horses (n = 5) did not develop recrudescent viraemia or disease following in vivo CD5+ T lymphocyte depletion. Immunosuppression of EIA virus-infected horses with corticosteroids (1 mg/kg body weight/day, intravenously for 9 days) resulted in detectable recrudescent EIA viraemia in 6/11 horses (55%) and recrudescent disease in 9/11 horses (82%). Normal horses (n = 3) treated with corticosteroids developed no clinical disease. These results demonstrate that the use of murine IgG2a MAbs to appropriate equine lymphocyte antigens will facilitate in vivo investigation of the role of T lymphocyte subpopulations in the control of EIA or other important equine diseases.

Animals↗

Biochemical characterization of bovine MHC DQ allelic variants by one-dimensional isoelectric focusing.

Previous studies on expressed bovine MHC class II polymorphism using one-dimensional isoelectric focusing (1D-IEF) allowed the identification of at least 12 allelic variants of the DRB3 gene. So far, only limited data have been available on the expression of other class II genes. The present study involved biochemical analysis of bovine MHC class II molecules using a set of monoclonal antibodies presupposed to be bovine DR and DQ reactive. After essential modification of the standard electrophoresis conditions used for 1D-IEF typing of bovine DR products, biochemical polymorphism was observed for non-DR molecules, revealing polymorphic sets of basic and acidic focusing bands. Because of the extensive DNA polymorphism described for bovine DQA and DQB genes, and the apparent similarity with the focusing pattern of human DQ products, these molecules were considered to be the bovine DQ homologues. The definition of the DQ-associated banding patterns was made possible by using two half-sib sire families. Four different DQA-like patterns and nine DQB-like patterns were detected. Segregation of the DQ types was supported by serological class I and class II typing. These results show that it is now possible to discriminate between expressed bovine DR and DQ polymorphism.

Alleles↗

Complexity of the bovine MHC class-II specificity DW3 as defined by alloantisera.

Alloantisera related to the bovine major histocompatibility complex (MHC) class-II specificity Dw3 were investigated by cross-absorption experiments and by application of the monoclonal antibody-specific immobilization of lymphocyte antigen assay (MAILA). The absorption study revealed antibodies specific for an antigenic determinant shared by all Ds03 (Dw3)-positive animals, and several other antibody populations recognizing the locally defined specificities Ds10, Ds11 and Ds15, that are closely associated with Ds03. The results of the MAILA-assay indicate that the Ds03 specificity is probably encoded by DQ, whereas specificities Ds10 and Ds 11 are more closely associated with DR molecules. The data presented here provide the first evidence that bovine DR and DQ specificities can be identified separately by serological methods using alloimmune antisera.

Animals↗