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G Splitter

Publications and source records attributed to G Splitter.

13 recordsLinked to original sources

High levels of nitric oxide production decrease early but increase late survival of Brucella abortus in macrophages.

Nitric oxide (NO), produced by the iNOS protein, is known as a defense mechanism against various pathogens and an apoptotic inducer of cells. Apoptosis can also be a host protective mechanism against intracellular bacteria. The intracellular survival of Brucella abortus in RAW264.7 macrophages was examined under conditions of the apoptotic inducer, NO. Since B. abortus does not induce high output of NO, Escherichia coli LPS and IFN-gamma, as potential therapeutic modalities, were added to increase the expression of iNOS, and thus NO. Using 10 ng/ml E. coli LPS and 25 U/ml IFN-gamma, nitrite production was as high as 140 microM by 72 h. However, when macrophages were infected with B. abortus, the nitrite concentration was 60 microM after 72 h post infection, greater than a two-fold decrease. The number of surviving bacteria decreased, from 6 to 24 h, in the presence of nitrite accumulation. In the absence of B. abortus there was an increase in apoptotic cells at 72 h with high nitrite accumulation. In contrast, the number of macrophage apoptotic bodies decreased in the presence of B. abortus. The data suggest that: (i) NO accelerates the killing of intracellular B. abortus, but not to completion during the first 24 h of infection; (ii) B. abortus can prevent apoptosis as an advantage for bacterial survival inside macrophages and (iii) surviving intracellular bacteria then replicate steadily after 24 h. B. abortus probably expresses genes that counteract the effect of a high NO environment or activates genes to utilize NO as a nitrogen source, as the Brucella genome codes for nitric and nitrous oxide reductase genes.

Animals↗

Brucella abortus genes identified following constitutive growth and macrophage infection.

The chronicity of Brucella abortus infection in humans and animals depends on the organism's ability to escape host defenses by gaining entry and surviving inside the macrophage. Although no human vaccine exists for Brucella, vaccine development in other bacteria has been based on deletions of selective nutritional as well as regulatory systems. Our goal is to develop a vaccine for Brucella. To further this aim, we have used a green fluorescent protein (GFP) reporter system to identify constitutively and intracellularly induced B. abortus genes. Constitutively producing gfp clones exhibited sequence homology with genes associated with protein synthesis and metabolism (initiation factor-1 and tRNA ribotransferase) and detoxification (organic hydroperoxidase resistance). Of greater interest, clones negative for constitutively produced gfp in agar were examined by fluorescence microscopy to detect promoter activity induced within macrophages 4 and 24 h following infection. Bacterial genes activated in macrophages 4 h postinfection appear to be involved in adapting to intracellular environmental conditions. Included in this group were genes for detoxification (lactoglyglutathione lyase gene), repair (formamidopyrimidine-DNA glycosylase gene), osmotic protection (K(+) transport gene), and site-specific recombination (xerD gene). A gene involved in metabolism and biosynthesis (deoxyxylulose 5' phosphate synthase gene) was also identified. Genes activated 24 h following infection were biosynthesis- and metabolism-associated genes (iron binding protein and rhizopine catabolism). Identification of B. abortus genes that are activated following macrophage invasion provides insight into Brucella pathogenesis and thus is valuable in vaccine design utilizing selective targeted deletions of newly identified Brucella genes.

Brucella abortus↗

Cytokines: communication molecules that influence the process of disease.

Subset of T lymphocytes that produce different cytokine patterns have reinforced the cellular- and humoral-mediated duality of the immune response. Thus, different cytokines selectively produced by different T cells results in the Th1/Th2 T cell paradigm. These T cell subsets, in an ever widening circle of examined diseases, contribute to the resolution or persistence of a disease. Now, it is timely to examine the contribution of the cytokines produced in different disease states for the improvement of vaccines and therapies for domestic animals.

Animal Diseases↗

T lymphocyte mediated protection against facultative intracellular bacteria.

Acquired immunity against intracellular bacteria is T cell dependent. T cells play a major role in protection against intracellular bacteria, but bacterial antigens recognized by T cells have been studied less extensively than bacterial antigens recognized by B cells. Using T lymphocytes from animals immunized against Brucella abortus, we have screened a bacterial genomic library for genes encoding antigens recognized by T cells. Lymphocytes that proliferated to B. abortus proteins were characterized for phenotype and cytokine activity. Bovine and murine lymphocytes recognized common bacterial antigens and possessed similar cytokine profiles, suggesting an analogous immune response in these two animal species. In vivo protection afforded by a particular cell type is dependent on the bacterial antigens presented and mechanisms of antigen presentation. MHC class I and class II gene knockout animals infected with B. abortus have demonstrated that protection to B. abortus is especially dependent on CD8+ T cells. Knowing the cells required for protection, vaccines can be designed to elicit the protective subset of lymphocytes. Currently, we are testing several recombinant B. abortus proteins using different immunization strategies. Finally, bacterial genes activated following intracellular phagocytosis are being examined using a novel, reporter system adapted to B. abortus.

Animals↗

Detection of cytokine transcriptional profiles from bovine peripheral blood mononuclear cells and CD4+ lymphocytes by reverse transcriptase polymerase chain reaction.

Cytokine transcriptional profiles constitute important information about T cell mediated immunity against pathogens. We have developed a reverse transcriptase polymerase chain reaction (RT-PCR) assay to monitor gene expression of bovine T lymphocyte cytokines. Bovine cDNA was reverse transcribed from total RNA and subsequently amplified using primers designed from bovine or murine and human consensus sequences. Cytokine transcription of beta-actin, interleukins (IL) IL-1 alpha, IL-1 beta, IL-2, IL-4, IL-6, IL-10, tumor necrosis factor (TNF)alpha, TNF beta and interferon-gamma was detected from concanavalin A activated peripheral blood mononuclear cells and CD4+ purified T lymphocytes. The assay allows detection of many cytokine mRNA in a species where research has been hindered by lack of commercially available reagents and sequence information. RT-PCR analysis of lymphocyte cytokines will be invaluable for understanding the progression or resolution of disease as a consequence of lymphocyte response to specific antigens.

Animals↗

Bovine natural killer activity against virally infected cells inhibited by monoclonal antibodies.

Forty-four monoclonal antibodies (mAbs) were evaluated for their ability to alter natural killer (NK) cell lysis of virally infected target cells. Six of the mAbs inhibited the lysis of the target cells, while one of the mAbs enhanced lysis. Four of the inhibitory mAbs, CACT26A, CACT16A, CACTB45A and MUC76A, had very marked activity. These mAbs with inhibitory or enhancing activity recognized (1) WC2 molecules (CACTB44A, CACT16A, CACT26A) present on putative NK cells, (2) molecules on granulocytes, monocytes, a subpopulation of lymphocytes (CACTB45A and TH2A), (3) CD11a (MUC76A), and a protein of CD3 (MM1A).

Animals↗

Anti-BoLA-w8 monoclonal antibody: production of a tissue typing reagent after blocking monomorphic sites on bovine mononuclear cells.

A murine monoclonal antibody, WIM-8 with specificity for BoLA-w8, was generated after using an immunization protocol designed to reduce the response to bovine monomorphic determinants. BoLA-w8/w9 peripheral blood mononuclear (PBM) cells were incubated with an antiserum from mice immunized with BoLA-w10/w20 PBM cells. Splenocytes from a mouse that received three intravenous injections of the treated cells were fused with murine myelomas. A hybridoma supernatant with alloreactivity in ELISA against BoLA-w8 positive but not BoLA-w8 negative PBM cells was tested for lymphocytotoxicity in parallel with parous alloantisera. WIM-8, an IgG2b monoclonal antibody, identified the 44,000 dalton protein of the bovine MHC class I molecule present on Bos taurus and Bos indicus animals.

Animals↗

Patterns of bovine T cell-mediated immune responses to bovine herpesvirus 1.

Lymphocyte proliferation was used to evaluate T cell-mediated immune responses to different isolates of Bovine Herpesvirus 1 (BHV-1). Groups of high, moderate, and low responses were observed when lymphocytes from three breeds of dairy cattle were stimulated with each of the BHV-1 isolates. Proliferation of cells in the low responding group could be augmented by exogenous IL-2. The mechanism of unresponsiveness by cells from one individual whose response was not altered by IL-2 supplementation was further investigated. The patterns of response by limiting dilution frequency analysis eliminated the possibility that this individual lacked responsive cells but suggested the presence of regulatory cell interactions which resulted in the observed low proliferative response. These results show that animals exposed to the same environment can vary greatly in their ability to respond to BHV-1. At least two mechanisms may be responsible for low proliferative responses in vitro: inadequate levels of IL-2 and the presence of suppressor cells.

Animals↗

Detection of impaired T cell-mediated immune responses to herpesvirus (BHV-1) in cattle.

Interleukin 2 (IL-2) functions in the regulation of cell-mediated immune responses both in vivo and in vitro. Therefore, IL-2 production has been studied in patients with immunological disorders to determine the level of the immune defect. However, the cause(s) of low responses to selected antigens by cells from clinically normal individuals has not been examined. The ability of cells from clinically normal individual cattle to produce and respond to IL-2 was investigated as a measure of specific cell-mediated immune response. Cells from the majority of animals (6/7 in a representative experiment) could produce IL-2 in response to mitogen or a specific antigen, Bovine Herpesvirus 1 (BHV-1). Proliferation of lymphocytes from the majority of low responding animals (2/3 and 4/4 in separate experiments) could be restored to a level similar to high responders by the addition of exogenous IL-2 after endogenous IL-2 depletion. IL-2 receptor expression was indirectly assessed by the ability of activated cells to absorb IL-2. One individual's cells were incapable of absorbing exogenous IL-2 and failed to proliferate indicating a lack of activation and expression of receptors. In addition, exogenous IL-2 was able to enhance proliferation of both high and low responders in the presence of endogenous IL-2. These results suggest that proliferation of bovine peripheral blood mononuclear cells is dependent on the presence of IL-2. In addition, IL-2 production can be used to measure specific cell-mediated immune responses.

Animals↗