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D Faherty

Publications and source records attributed to D Faherty.

4 recordsLinked to original sources

Analysis of the B7 costimulatory pathway in allograft rejection.

BACKGROUND: Blockade of the B7/CD28 costimulation pathway with the fusion protein, CTLA4-Ig, has been shown to prolong allograft survival in numerous rodent models, suggesting that this pathway is functionally important in the allograft rejection response. This pathway is complex and consists of at least the B7-1, B7-1a, B7-1cyt II, and B7-2 molecules on the antigen-presenting cell and CD28 and CTLA4 molecules on the T cell. METHODS: The intragraft transcript expression of the B7 molecules and their counterreceptors was defined using reverse transcriptase-polymerase chain reaction in the vascularized mouse cardiac allograft model. In addition, the functional significance of these molecules was investigated both in vitro in the mixed leukocyte response (MLR) and in vivo in the vascularized mouse cardiac allograft model. RESULTS: Intragraft expression of B7-1, B7-1a, B7-1cyt II, B7-2, CD28, and CTLA4 transcripts is up-regulated in allografts when compared with both normal untransplanted hearts and syngeneic transplants at between 5 and 12 days after transplant. Both anti-B7-1 and anti-B7-2 monoclonal antibodies alone inhibited T-cell proliferation in the MLR, however, equivalent maximal inhibition was obtained by a combination of these agents or by CTLA4-Ig. Likewise, in the mouse cardiac allograft model, both anti-B7-1 and anti-B7-2 modestly prolonged graft survival. However, an increased survival was obtained with either a combination of anti-B7-1 and anti-B7-2 or CTLA4-Ig. Blockade of the B7/CD28 pathway in the MLR using T cells from CD28 knockout mice had no effect on the proliferative response. Likewise, blockade of the B7/CD28 pathway did not effect the rate of rejection of cardiac allografts by CD28 knockout recipients. CONCLUSIONS: These data suggest that both B7-1 and B7-2 have an important role in allograft rejection in the mouse vascularized cardiac allograft model.

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IL-12-deficient mice are defective but not devoid of type 1 cytokine responses.

Interleukin-12 (IL-12) has been described as a pivotal molecule in the immune response based in part on its ability to influence the differentiation of T helper (Th) cells into a type 1 (Th1) phenotype. This event is crucial in that appropriate differentiation of naive T cells can determine susceptibility or resistance to given pathogens by influencing the balance between cellular and humoral immunity. In order to further delineate the role of IL-12 in the immune response, we generated mice deficient for this cytokine. IL-12 knockout mice were viable, fully fertile, and displayed no obvious developmental abnormalities. Upon immunological analysis, these mice demonstrated an impaired ability to effect a Th1 response as well as an impaired ability to produce interferon-gamma in response to endotoxin in vivo. These data establish an essential role for IL-12 in the generation of optimal Th1 responses in vivo, but weak responses can occur independently of IL-12.

Animals↗

Immunosuppression by discodermolide.

In summary, discodermolide, a novel, marine-derived compound, is a potent in vitro and in vivo immunosuppressive agent. Discodermolide blocks cellular proliferation in lymphoid and nonlymphoid cells. This blocking action is not due to cytotoxicity. Blockage of cell proliferation by discodermolide appears to occur at the G2/M interface of the cell cycle, similar to that observed with other types of antiproliferative drugs (i.e., doxorubicin). The cell cycle block appears to be reversible, as cells recover normal cycling patterns within 48 h after removal of the compound. Additional work with this compound is targeted towards determining the exact nature of discodermolide's mitotic block and is currently under way.

Alkanes↗

Analysis of retinoid-mediated immunosuppression in vivo. Effects of Ro23-6457 on cellular alloimmune responses.

We have investigated the immunosuppressive effects of a synthetic retinoid, Ro23-6457, on the in vivo development of cellular alloimmunity. We initially observed that treatment of C57B1/6 mice with 10 mg/kg/day Ro23-6457 drug could prolong the survival of DBA/2 cardiac allografts, thus verifying its immunosuppressive potential in murine experimental models. We next used the sponge matrix model of allograft rejection and limiting dilution analysis (LDA) of cytotoxic T lymphocyte (CTL) frequency to dissect this phenomenon further. In this experimental system we observed the following effects of Ro23-6457: (1) dose-dependent decrease in the number of LDA-detectable, donor-reactive CTL accumulating in sponge matrix allografts; (2) failure to interfere with in vitro assays of cellular alloimmunity, including LDA; and (3) antigen non-specific depression of LDA-detectable CTL in lymph nodes, spleen and especially in peripheral blood. For peripheral blood CTL, the drug eliminated LDA-detectable CTL, an effect that was reversible and could not be attributed to the activation of suppressor cells. Since Ro23-6457 has little effect on the number of peripheral blood Thy1.2+ cells, it appears that this drug does not physically eliminate CTL, but makes them temporarily hyporesponsive to antigen stimulation, and thus undetectable in functional assays like LDA.

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