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C J Howard

Publications and source records attributed to C J Howard.

At least 19 recordsLinked to original sources

Cloning of two members of the SIRP alpha family of protein tyrosine phosphatase binding proteins in cattle that are expressed on monocytes and a subpopulation of dendritic cells and which mediate binding to CD4 T cells.

Recent experimental studies have greatly clarified the function of cell surface molecules in the induction and modulation of T cell responses by antigen-presenting cells (APC). However, the differences in ability to stimulate T cells evident for different types and subpopulations of the same APC, such as dendritic cell subsets, is less well understood. This report details an investigation of an antigen expressed on monocytes that is also expressed on a subset of cattle afferent lymph veiled cells (ALVC). A cDNA library derived from cattle monocytes was screened with monoclonal antibodies (mAb) for expression in COS-7 cells. Using separate mAb for screening, two cDNA were cloned, the sequences of which showed a single long open reading frame encoding a predicted type I glycoprotein of 506 amino acids that contained three immunoglobulin superfamily domains and a long 112-amino acid cytoplasmic tail. We have termed this antigen MyD-1, reflecting its myeloid and dendritic cell distribution. Analysis of the EMBL database revealed that the molecule is a member of the recently described family of signal regulatory proteins (SIRP). The outeremost Ig domain was of the adhesion/receptor I-type, suggesting that MyD-1 might bind to a ligand on another cell. Evidence for this was subsequently obtained by demonstrating that COS-7 cells transfected with MyD-1 cDNA bound CD4 T cells and this binding was blocked by specific mAb. The potential importance of this interaction was supported by the finding that the proliferation of resting memory CD4 T cells to ovalbumin-pulsed monocytes was significantly reduced in the presence of mAb to MyD-1. A role for the molecule in the modulation of the monocyte/dendritic APC response is also predicted from the existence of multiple potential tyrosine phosphorylation sites in the cytoplasmic domain, including the presence of an immunoreceptor tyrosine-based inhibitory motif (ITIM) and the observation that the SIRP alpha family members have been shown to bind to SHP-1 and SHP-2. Together these data indicate a possible functional importance for MyD-1 in the regulation of monocyte and dendritic cell function.

Amino Acid Sequence

Cellular requirements for the activation and proliferation of ruminant gammadelta T cells.

Requirements for the activation and proliferation of gammadelta T cells were investigated. Maximum numbers of gammadelta T cells expressed the IL-2R alpha-chain after 6-h Con A stimulation in peripheral blood, efferent lymph, and afferent lymph. In comparison, IL-2R alpha-chain expression on CD4 T cells only reached maximum levels in response to Con A stimulation in peripheral blood and afferent lymph populations. Analysis of enriched gammadelta T cells demonstrated that Con A-induced expression of the IL-2R alpha-chain was independent of APC. Together, these data suggest that the requirements for gammadelta T cell activation are less stringent than those for alphabeta T cell activation. Unfractionated peripheral blood, efferent lymph, and afferent lymph cell populations proliferated in response to Con A alone. In contrast, enriched gammadelta T cells (CD4/CD8 depleted) from efferent lymph did not proliferate in response to Con A alone, but required the addition of IL-2. This requirement for exogenous IL-2 could be overcome by the addition of dendritic cells purified from afferent lymph. These results suggested that gammadelta T cells required costimulatory signals provided by APC to ensure the production of sufficient IL-2 to drive proliferation. CD28 and CTLA-4 mRNA were detected in efferent lymph and afferent lymph populations containing CD4 and CD8 T cells stimulated with Con A and IL-2 or with Con A alone, respectively. In contrast, negligible levels of these mRNA species were detected in efferent and afferent lymph populations devoid of CD4 and CD8 T cells. These results suggest that ovine gammadelta T cells may use alternative costimulatory pathways.

Animals

Mapping of bovine FcgammaR (FCGR) genes by sperm typing allows extended use of human map information.

Polymorphic sites within the bovine FcgammaRI (FCGR1), FcgammaRII (FCGR2), and FcgammaRIII (FCGR3) genes were used for proximal mapping of these genes to bovine Chromosome (Chr) 3 (BTA3) with paternal half-sib families from Norwegian Cattle. A fine-structure genetic map of the region was obtained by the analysis of 288 sperm cells from three bulls that were heterozygous for the loci included in the study. No recombinants were observed between FCGR2 and FCGR3 (242 sperm cells). Considering FCGR2 and FCGR3 as a single locus, a three-point linkage analysis for [FCGR2/FCGR3], FCGR1, and INRA003 was carried out. The best-supported order of the loci was found to be INRA003-FCGR1-[FCGR2/FCGR3]. Map distances in a two-point linkage analysis were 10.3 cM between [FCGR2/FCGR3] and FCGR1, and 25.5 cM between FCGR1 and INRA003, respectively. This linkage mapping of the bovine FCGR gene family resembles the human situation where all FCGR genes are located at Chr 1 (HSA1), at position q21-q24. Moreover, the results locate the evolutionary breakpoint between HSA1q and BTA3 within the human 1q24 region.

Alleles

Cross-reactivity of monoclonal antibodies to defined human leucocyte differentiation antigens with bovine cells.

Thirty-seven subpanels of monoclonal antibodies (mAbs) included within the Vth International Workshop on Human Leucocyte Differentiation Antigens (Vth Workshop) were assayed for reactivity with bovine peripheral blood leucocytes. Sixty-five of the 772 mAbs (8.4%) stained bovine cells. mAbs from each of the 27 different CD groups that contained a mAb reacting with cattle were further investigated to compare the cellular expression of the antigen in cattle with that reported for the different CD antigens in humans. Two-colour immunofluorescence staining of the Vth Workshop mAbs against characterized bovine leucocyte subpopulation markers that identified monocytes, B cells, CD4, CD8 and WC1 +T cells were used for these analyses. Eighteen of the mAbs to different human CD antigens (CD11a, CD14, CD18, CD21, CD27, CD29, CD49a, CD49b, CD49d, CD49e, CD51, CD61, CD62L, CD62P, CD63, CDw78, CD98, CD100) stained bovine antigens with an almost identical cellular distribution to that reported in humans. This implies that these mAb react with the homologous cattle molecules. Nine mAbs (CD35, CD37, CD49c, CD50, CD54, CD66, CD81, CD88, CD102) stained bovine cells but the cellular distribution of the bovine antigen was different to that reported in humans implying either a different cellular distribution for these antigens in cattle or a reaction with a different molecule. The investigation has allowed the identification of several bovine homologues of human CD antigens that have not been previously defined in cattle and the cross-reacting mAbs will be valuable reagents for future investigations of bovine immunology.

Animals

A polymerase chain reaction assay for the detection of Leptospira spp. in bovine semen.

A rapid and specific method for the detection of pathogenic Leptospira spp. in bovine semen using the polymerase chain reaction (PCR) is described. The primers used were derived from an EcoR1/BamH1 fragment that hybridized strongly to chromosomal DNA from the hardjobovis serovar. Three different extraction methods were evaluated in this study: phenol-chloroform extraction method, proteinase K (PK) in 1% SDS, followed by phenol-chloroform, and phenol-chloroform followed by 1% cetyltrimethylammonium bromide (CTAB). A PCR product of approximately 500 base pairs (bp) in length was obtained when DNA from pure Leptospira culture was used as a template for PCR, regardless of the DNA extraction method used. The product was consistent with that predicted from the gene sequence. However, in semen seeded in vitro, as well as in semen from infected bulls, a PCR product was obtained only when the leptospiral DNA was extracted from the specimen using the CTAB method. In contrast, other methods used for DNA extraction did not generate suitable templates for the PCR procedure. This is the first PCR protocol developed to detect Leptospira in bovine semen. The PCR protocol provided a direct and unequivocal demonstration that Leptospira can be detected in semen of infected animals. The CTAB method was also used successfully in detecting Leptospira in the urine of infected animals. The PCR procedure was shown to be more sensitive than either the fluorescent antibody test (FAT) or culture for detecting the organism in urine.

Animals

Ruminant cluster CD62L.

Within the Third Workshop, four monoclonal antibodies (mAbs) were considered to belong to this cluster: IAH-CC32 (3W-360), BAQ92 (3W-485), Buf44 (3W-452) and IVA94 (3W-563). IAH-CC32 was the workshop control and has previously been identified as a CD62L-specific mAb (Howard, C.J., Sopp, P. and Parsons, K.R., 1992. L-selectin expression differentiates T cells isolated from different lymphoid tissues in cattle but does not correlate with memory. Immunol., 77:228-234) by showing that human L-selectin mAb LAM1.4 (Spertini, O., Kansas, G.S., Reimann, K.A., Mackay, C.R. and Tedder, T.F., 1991. Functional and evolutional characteristics of distinct epitopes on the leukocyte adhesion molecule-1 (TQ-1, Leu-8) that regulate leukocyte migration. J. Immunol., 147:942) cross-reacts with bovine cells and blocks binding of IAH-CC32. The mAb DREG-56 to human CD62L (Bosworth, 1993. Bovine L-selectin: a peripheral lymphocyte homing receptor. Vet., Immunol., Immunopathol, 37:201-215) also stains cattle cells. Buf44 blocked binding of IVA94 and IAH-CC32, indicating that all three bind to the same or closely related epitope on the L-selectin molecule (Naessens, 1996. Biochemical analysis of preliminary clusters in the non-lineage panel. Vet. Immunol. Immunopathol., 52: 347-356).

Animals

Ruminant cluster WC14.

Two monoclonal antibodies (mAbs) belong to this cluster: IL-A155 (3W-380) and BT3/8.12 (3W-302). These two mAbs inhibited the binding of each other to granulocytes, indicating that they bound to the same or closely related epitopes on the same molecule (Naessens et al., 1996; Naessens, J., Nthale, J.M. and Muiya, P., 1996. Biochemical analysis of preliminary clusters in the non-lineage panel. Vet. Immunol. Immunopathol., 52: 347-356).

Animals

Ruminant cluster WC15.

A new cluster is described, WC15, comprised of five monoclonal antibodies which recognise an antigen expressed on erythrocytes.

Animals

Discrimination of two subsets of CD1 molecules in the sheep.

This paper examines the expression of CD1 in the sheep utilising the monoclonal antibodies (mAbs) which were assigned to OvCD1 in the First and Second Workshops on Ruminant Leukocyte Differentiation Antigens along with those primarily clustered as Bov/OvCD1 in the Third Workshop. Detailed immunohistological studies of both lymphoid and non-lymphoid tissues and flow cytometry of isolated cell populations revealed two distinct patterns of CD1 expression in the sheep. The mAbs assigned to the sub-cluster BovCD1w1 (SBU-T6) and BovCD1w3 (IAH-CC43 and IAH-CC118) were much more widely distributed than those of the sub-cluster BovCD1w2. In addition to cortical thymocytes and dendritic cells (DC) the CD1w1 and w3 molecules are expressed by peripheral blood B lymphocytes, monocytes and many tissue macrophages.

Animals

Investigation of PC36 (BoCD45R).

Eight monoclonal antibodies (mAbs) clustered together in a statistical analysis of data submitted to the Third Workshop on Ruminant Leucocyte Antigens to form provisional cluster (PC) 36. PC36 included the CD45R workshop control mAb CC76. The mAbs were compared by two-colour immunofluorescence with mAbs against other leucocyte subpopulation antigens. The flow cytometry results indicated that all of the mAbs identified CD45R.

Animals

Identification of bovine CD14.

Six monoclonal antibodies (mAbs) that clustered together in a statistical analysis of data submitted to the Third Workshop on Ruminant Leucocyte Antigens and mAb CC-G33 were tested for ability to stain COS-7 cells transfected with cDNA encoding human CD14. Only mAb CC-G33 recognised the human molecule. The six mAbs were compared with mAb CC-G33 by flow cytometry and three were shown to be directed against bovine CD14.

Animals

Influence of selective T-lymphocyte depletion on the lung pathology of gnotobiotic calves and the distribution of different T-lymphocyte subsets following challenge with bovine respiratory syncytial virus.

The depletion of CD8+ T-lymphocytes with a murine monoclonal antibody (mAb) specific for the CD8 molecule delayed the ability of three gnotobiotic calves to clear bovine respiratory syncytial virus (BRSV) from their lungs within 10 days after an experimental challenge with the virus. This protracted infection was associated with an enhanced pneumonic consolidation score (21.6 per cent) compared with seven control calves (7.4 per cent) and a histological lesion of active respiratory epithelial hypertrophy. Three gnotobiotic calves depleted of the CD4+ subpopulation with the appropriate mAb also had enhanced macroscopic lesions (16.6 per cent) but the histological lesion was less active. The depletion of the gamma/delta TCR+ WC1+ subpopulation had no apparent effect on the macroscopic or microscopic pulmonary lesions. Although the depletion of the CD8+ or the CD4+ subpopulations enhanced the pulmonary lesions, no clinical signs of respiratory disease were detected. Immunoperoxidase labelling and image analysis of the lymphocyte subpopulations in lung tissue revealed an increase in the number of CD8+ T cells after the infection of non-depleted, control calves, especially in the lamina propria of the large bronchioles. Calves depleted of individual lymphocyte subsets and infected with BRSV showed no compensatory increase in the remaining subpopulations and no lymphoreticular hyperplasia.

Animals

Afferent lymph veiled cells stimulate proliferative responses in allogeneic CD4+ and CD8+ T cells but not gamma delta TCR+ T cells.

Dendritic cells were identified in afferent lymph derived by lymphatic cannulation of cattle, stained with monoclonal antibody (mAb) to the bovine workshop cluster 6 (WC6) antigen, which is highly expressed on bovine afferent lymph veiled cells, and sorted with a fluorescence-activated cell sorter. These cells expressed major histocompatibility complex (MHC) class I and II and CD1b but not CD14. They bound human and murine CTLA4-immunoglobulin (CTLA4-Ig) fusion proteins indicating expression of CD80 and or CD86. Dendritic cells induced proliferative responses in allogeneic CD4+ and CD8+ cells sorted from blood but did not induce responses in purified allogeneic WC1+, gamma/delta T cells, which are CD2-, CD4-, CD8- and are the major gamma delta T-cell population in cattle blood, even when interleukin-2 (IL-2) was added to cultures. A WC1-, CD2+ gamma delta T-cell receptor (TCR)+ population predominates in cattle spleens and proliferation of a T-cell line with this phenotype was not induced by allogeneic dendritic cells, with or without added IL-2. The observations imply that the ligand for the gamma delta TCR expressed on the two populations is not present on allogeneic dendritic cells or that the costimulatory molecules expressed on dendritic cells that render them highly effective at stimulating MHC class I- and class II-restricted CD8+ and CD4+ T cells are not recognized by the WC1+ or WC1- gamma/delta T cells. Expression of CD28 by the four cell types was assessed by reverse transcriptase-polymerase chain reaction (RT-PCR). Purified CD4+ and CD8+ cells both produced CD28 transcripts but neither purified WC1+ cells nor the WC1- gamma delta TCR+ cell line did so. The findings indicate that CD80 and or CD86 are involved in the stimulation of CD4+ and CD8+ alpha beta TCR+ T cells but not in the stimulation of either of the two gamma delta TCR+ populations.

Animals