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D V Cramer

Publications and source records attributed to D V Cramer.

At least 55 records · Page 3Linked to original sources

Prevention of orthotopic liver allograft rejection in rats with a short-term brequinar sodium therapy. Analysis of intragraft cytokine gene expression.

Brequinar sodium (BQR) is a new immunosuppressive drug that is highly effective in preventing graft rejection in several different experimental settings, including primary allografts and xenografts. A short course of BQR treatment during the onset of allograft rejection can induce the permanent survival of liver and kidney allografts in rats. To study the molecular basis of BQR-induced prolongation of allograft survival, we analyzed the intragraft pattern of IL-1 alpha, IL-2, IL-2R, IL-4, IL-6, IL-10, and TNF gene expression in the ACI-to-LEW liver allograft model. A semiquantitative polymerase chain reaction was developed to measure cytokine gene expression in control and BQR-treated liver graft recipients at various days after transplantation. Untreated control liver allografts expressed all of the cytokines analyzed. There was a marked increase in the steady state level of transcripts for each cytokine as graft rejection proceeded. The treatment of liver graft recipients with 12 mg/kg/day of BQR on days 6, 7, and 8 after transplantation suppressed the expression of all these cytokines within 24 hr of administration. The early suppression of cytokine expression was associated with a modest but distinct reduction in the infiltration of inflammatory cells into the liver grafts. The reduction in the level of transcripts for IL-4, IL-6, and IL-10 persisted in long-term survivors (30 days after transplantation). In contrast, there was a significant increase in the level of transcripts for IL-1 alpha, IL-2, and IL-2R in these long-term survivors. Our results demonstrated clearly that the pattern of cytokine gene expression during allograft rejection is significantly altered by a 3-day course of therapy with BQR. The temporary down-regulation of cytokine gene expression may be responsible for an altered immunological state that results in the prolonged survival of liver allografts.

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Regeneration-induced accelerated rejection in reduced-size liver grafts.

Liver regenerative processes are associated with enhanced expression of alloantigens. Accordingly, we tested the hypothesis that such enhanced surface expression of alloantigens during regeneration of reduced-size liver grafts is associated with accelerated rejection. Our OLT model was LEW (RT1) to BN (RT1n), with donor liver resected by 50%. The study group consisted of reduced-size allografts. Control groups were syngeneic reduced-size isografts and full-size allografts. Reduced-size isograft recipients survived indefinitely. Both isografts and allografts regenerated to their prereduction size within 12 days. Recipients of reduced-size allografts died of accelerated rejection within 12.2 +/- 0.8 days, significantly earlier than recipients receiving full-size allografts (36.2 +/- 4.1 days, P < 0.01). The accelerated rejection in the regenerating allografts was mediated both by cellular and humoral mechanisms, evidenced by earlier lymphocytic invasion of the graft, enhanced donor MHC class II expression, and the emergence of IgM antibodies, directed specifically against donor endothelial antigens. These data suggest that regeneration of reduced-size allografts is accompanied by accelerated cellularly and humorally mediated alloreactivity. Recipients of reduced-size allografts may, therefore, benefit from more potent immunosuppression during the period of active liver regeneration.

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The pathogenesis of xenograft rejection.

The transplantation of vascularized organs between species stimulates an intense rejection reaction by the recipient of the graft. The classification of the xenograft rejection reaction on the basis of the degree of genetic disparity between donor and recipient species and the presence or absence of preformed antibody to the donor tissue does not provide for a precise classification schema. We have proposed that xenograft reactions be classified on the basis of the immunological mechanisms responsible for the loss of the graft. The rejection of xenografts would then be divided into those that are antibody-dependent and mediated by antidonor antibody, either preformed (i.e. pig-to-human xenografts) and present at the time of transplantation or antibody produced in response to placement of the graft (hamster-to-rat). A second group of xenograft reactions would consist of those for which the direct activation of the alternative complement pathway results in loss of the graft in the absence of the binding of antidonor antibody from the recipient (guinea pig-to-rat). The focus on the pathogenesis of xenograft reactions for classification purposes is a more consistent method of description and is more clearly related to future attempts to prevent rejection with immunosuppressive therapy.

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Protective effect of the lazaroid U74006F in cold ischemia-reperfusion injury of the liver.

Lipid peroxidation may play a major role in the loss of liver graft viability after prolonged cold ischemia and reperfusion injury. The lazaroid compound U74006F is a potent inhibitor of lipid peroxidation, and this study was designed to evaluate the efficacy of this compound in preventing cold ischemia-reperfusion damage in three different models: pig endothelial cells in culture, ex vivo isolated pig liver perfusion and orthotopic transplantation of syngeneic rat livers. The addition of U74006F to University of Wisconsin preservation solution significantly prolonged endothelial cell viability after 48 and 72 hr of cold ischemia and reoxygenation (p < 0.01). Donor pigs were injected with vehicle or U74006F (4.5 mg/kg) before liver harvest. After 24 hr of cold storage in University of Wisconsin solution, the livers were perfused with pig blood for 180 min in an isolation chamber. Measurements of liver function parameters, including AST, ALT, bile production, superoxide anion and phospholipase A2 release, were assessed every 60 min. Although bile production was similar in the U74006F-treated and control groups, significant decreases of AST and ALT levels (p < 0.01) in the perfusate of the livers from treated donors were observed. In addition, the U74006F group displayed significantly reduced release of superoxide anion and phospholipase A2 compared with these parameters in the untreated group (p < 0.05 and p < 0.01, respectively). In the last model, donor rats were treated with U74006F before harvest; the rat liver grafts were preserved in cold University of Wisconsin solution for 24 hr and then transplanted into recipient rats.(ABSTRACT TRUNCATED AT 250 WORDS)

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Lymphocytes infiltrating rat cardiac allografts express a limited repertoire of T cell receptor V beta genes.

The T cell response to many self-MHC-restricted nominal Ag involves limited use of the TCR repertoire. The status of the TCR repertoire in allogeneic responses remains unclear. In this report, we have studied the TCR V beta gene repertoire involved in the rejection of cardiac allografts disparate for major and minor histocompatibility Ag in rats. Graft-infiltrating lymphocytes (GIL) were isolated from rejecting heart allografts and analyzed for the expression of the V beta repertoire using a cDNA library and a semiquantitative polymerase chain reaction (PCR). We report here that GIL isolated at early stages of the rejection reaction preferentially use the V beta 4 gene. First, V beta 4 comprised 36.4% (8/22) of randomly sequenced cDNA clones isolated from a TCR-beta chain-specific cDNA library established from GIL harvested 3 days posttransplantation. The V beta 4 gene in these clones was found in conjunction with several different J beta and N regions, suggesting a dominant role for the V beta 4 encoded domains in the recognition of allograft Ag. Second, the V beta 4 message comprised 56.6 to 65.7% of the transcripts expressed by the 20 rat V beta genes in three T cell lines established from GIL isolated 2 days posttransplantation. Third, fresh, unmanipulated GIL harvested at days 2 and 3 posttransplantation predominantly expressed the V beta 4 gene. Fourth, the expression of V beta 4 in naive splenocytes constituted only 5.4% of the V beta detected, suggesting that the predominant use of the V beta 4 gene by GIL was not a consequence of its high level of expression in the periphery. The limited use of the TCR repertoire in allograft rejection may provide the opportunity to interrupt the rejection process and induce donor-specific tolerance by targeting a select population of T cells for inactivation or elimination.

Amino Acid Sequence↗

Structure and diversity of rat T cell receptor alpha-chain genes.

We have sequenced 22 TCR-alpha clones isolated from two cDNA libraries derived from rat thymocytes and heart allograft-infiltrating lymphocytes. Sixteen different V alpha and 17 J alpha genes were characterized in these clones. The V alpha genes could be divided into nine subfamilies, each containing from one to three members. Nucleotide sequence comparisons to mouse alpha genes revealed the existence of mouse homologues for all the J alpha s and 8 of 9 V alpha subfamilies. One of the rat V alpha subfamilies appeared to have no known mouse counterpart. Southern blot analysis of germ-line DNA with cDNA probes specific for six different subfamilies demonstrated the existence of two to nine V alpha genes per subfamily. A minimum number of 35 V alpha genes was estimated for the nine rat subfamilies characterized. These analyses also detected two different RFLP patterns among five different inbred rat strains, including strain-specific loss of hybridization bands for some V alpha, indicating that deletion events may have occurred in the rat alpha gene locus. The characterization of rat TCR V alpha genes should facilitate a better understanding of T cell role in pathologic conditions such as autoimmune diseases and graft rejection.

Amino Acid Sequence↗

Removal of natural human xenoantibodies to pig vascular endothelium by perfusion of blood through pig kidneys and livers.

We have examined the nature of the binding of human xenoantibodies to pig liver and kidney vascular endothelium. Our results demonstrate that human serum contains IgM and IgG xenoantibodies that bind to pig vascular endothelium, and that the pattern of antibody binding is similar for both livers and kidneys. Immunohistochemical analysis of pig kidneys after perfusion with human blood demonstrated the binding of both IgM and IgG xenoantibodies, complement (C3), and fibrinogen to the vascular and glomerular endothelium. An ELISA assay of the perfusate after perfusion of 500 ml of human blood through a single pig kidney for 60 min demonstrated a significant reduction in the amount of human IgM (67%) and IgG (55%) binding to pig aortic endothelium. Similar perfusion experiments conducted with pig livers were associated with minimal immunohistochemical evidence of the binding of human xenoantibodies to liver vascular endothelium. Immunofluorescence staining for IgM, IgA, C3, and C1q was negative or minimally positive in the liver vascular endothelium. Sinusoidal endothelium were weakly positive for IgG and fibrinogen. The perfusion of the pig liver with human blood was, however, associated with a significant reduction in the subsequent binding of IgM and IgG to pig kidney vascular endothelium. Pig liver perfusion was also responsible for the removal of both IgM and IgG xenoantibodies capable of reacting with pig aortic endothelium, as measured by an ELISA assay of the perfusate. These results suggest that both pig kidney and livers are capable of absorbing the xenoantibodies that may be responsible for mediating a hyperacute rejection of pig xenografts and that the distribution of the target antigens for these antibodies is similar in the two organs.

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Pig aortic endothelial cell antigens recognized by human IgM natural antibodies.

Human-to-pig xenoantibodies may constitute a major obstacle to the successful use of pigs as xenograft donors for human transplantation. Our studies demonstrate that normal human serum contains antibodies, primarily IgM, that are cytotoxic for pig aortic endothelial cells (PAECs). These antibodies bind to several antigens isolated from PAECs, lymphocytes, platelets, red blood cells, and the kidney. Absorption of human serum with pig lymphocytes removes the cytotoxic activity to PAECs and some, but not all, of the IgM antibodies capable of binding in an ELISA assay to the PAECs. The cytotoxic antibodies are inactivated by 2-mercaptoethanol, suggesting that they are primarily IgM. Whole cell extracts of PAEC, lymphocytes, platelets, red blood cells, and kidney were prepared and analyzed by Western blots to establish the cellular distribution of the xenoantigens that react with human IgM in pooled human serum. Results showed that several of the most intensely stained bands migrated between 24 and 66 kDa. High molecular weight bands (> 100 kDa) were observed only in kidney, platelet, and PAEC preparations. Human IgM xeniantibodies also reacted strongly in Western blots to endothelial cell membranes proteins with molecular weights of 62, 48, 42, 36, 34, 28, and 26 kDa. Absorption of human serum with pig lymphocytes removes IgM binding to all bands except for a 34-kDa Treatment of the PAEC membrane proteins with proteinase K disrupts the binding of the human IgM antibodies. Similar treatment with glycosidase F) resulted in a decrease in molecular weight of the 28- and 26-kDa bands, suggesting that these xenoantigens are glycoproteins and that antibody binding to some xenoantigens may not require glycosylation.

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The synergism of brequinar sodium and cyclosporine used in combination to prevent cardiac allograft rejection in the rat.

Brequinar sodium (BQR) is a novel immunosuppressive drug that inhibits cell proliferation by virtue of its disruption of the de novo pyrimidine biosynthesis. The basis of the immunosuppressive activity of BQR is distinctively different from that of cyclosporine (CsA), and we have recently evaluated in vivo and in vitro the efficacy of the two drugs when used in combination. Subtherapeutic doses of BQR and CsA were tested for their ability to prolong heterotopic cardiac allograft survival in the MHC- and non-MHC-mismatched ACI-->LEW rat strain combination. The graft survival data derived from these experiments were analyzed using the median-effect analysis to establish the immunosuppressive interaction of both drugs. The administration of BQR 3 mg/kg three times weekly or CsA 2.5 mg/kg daily moderately prolonged cardiac allograft survival, with a mean survival of 10 +/- 0.5 and 16 +/- 5.3 days, respectively. The use of the two drugs in combination with the same dose schedule exerted a synergistic effect on graft survival, prolonging the graft function to a mean of 31 +/- 5.7 days. Sera from animals treated with the two drugs displayed, when compared with single treatment groups (BQR 3 mg/kg and CsA 2.5 mg/kg), significantly (P < 0.01) increased in vitro inhibition of lymphocyte proliferation following stimulation with PHA. Finally, a clear correlation between the mean survival time and BQR plasma levels of animals treated with BQR alone or in combination with CsA was seen. Those treatment groups with BQR levels below 2 micrograms/ml (1.5 and 3.0 mg/kg/3x/week) had a mean graft survival of less than 10 days). In contrast, recipients treated with a combination of low doses of BQR and CsA displayed higher drug plasma levels (> 2 micrograms/ml) and longer mean graft survival times. These observations suggest that BQR and CsA may be highly effective when used in combination to prevent organ allograft rejection for clinical transplantation.

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The prevention of accelerated cardiac allograft rejection in sensitized recipients after treatment with brequinar sodium.

Brequinar sodium (BQR) is a novel immunosuppressive agent that is highly effective in preventing B lymphocyte-mediated antibody production. We have examined the effects of BQR treatment in sensitized recipients on graft survival, donor-specific antibody responses (IgM and IgG), and the appearance of immunopathological lesions present in the grafts. LEW rat recipients were sensitized with single ACI skin graft on day 7 and received heterotopic ACI cardiac grafts on day 0. The recipients rejected the cardiac grafts in an accelerated fashion at day 2.5 post-transplantation, compared to day 7.0 in unsensitized recipients. The animals were treated with low (3 mg/kg/day) or high (12 mg/kg/3x weekly) doses of BQR during skin graft sensitization and/or after challenge with ACI heart allografts. All groups treated with BQR showed significant prolongation of graft survival in the sensitized recipients. The best survival was observed following high-dose BQR therapy during both sensitization and effector phases (median survival time = 40.0 days, P << 0.001). Daily treatment with BQR (3 mg/kg/day) prevented IgM (but not IgG) antibody responses. Treatment with higher doses of BQR (12 mg/kg/3x weekly) before and after skin graft sensitization was effective in preventing both IgM and IgG production. In general, BQR treatment resulted in effective suppression of anti-donor antibody responses, stable graft function, and a reduction in the severity of the acute vascular lesions in the graft. The effectiveness of BQR in preventing accelerated graft rejection when used at 12 mg/kg/3x weekly was comparable to that seen with treatment of sensitized animals with CsA at 15 mg/kg/day for 30 days. Daily treatment with cyclophosphamide at 5 or 15 mg/kg/day was ineffective for preventing graft rejection in sensitized recipients. These results indicated that BQR may provide an important addition to treatment protocols designed to prevent transplantation rejection in presensitized patients. BQR has the ability to significantly inhibit host cellular and humoral immune responses to the donor graft and this facet of the immunosuppressive activity of the drug may be responsible for preventing this aggressive form of rejection.

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The development of Brequinar as an immunosuppressive drug for transplantation.

The preclinical and clinical characterization of Brequinar sodium has demonstrated the potential for the use of this drug as a component of a polytherapeutic treatment strategy to prevent the rejection of organ grafts. Brequinar, along with several other new immunosuppressive drugs, including Mizorbine, 15-deoxyspergualin, and Mycophenolate mofetil, is an antimetabolite with immunosuppressive activity and toxic side effects that are distinctly different from those of CsA and the newly characterized FK 506. This combination of effective antiproliferative activity exhibited by these newer agents and the well-established effect of CsA on T-lymphocyte activation offers the potential for the development of immunosuppressive regimens that are significantly more effective with fewer side effects for the patient. The concept of synergistic interaction between these two classes of immunosuppressive agents has been tested experimentally and found to be extremely effective for both allograft and xenograft models of graft rejection (Cosenza et al. 1993, 1993a, Stepkowski & Kahan 1993). It remains to be established that a similar synergism will exist for clinical transplantation. The effectiveness of CsA as a primary immunosuppressive agent, however, assures the inclusion of CsA in any polytherapeutic approach to be tested in the near future. New clinical trials designed to prove efficacy for immunosuppressive agents, such as BQR, will use CsA or FK 506 as a primary component of the treatment protocol. The combination of immunosuppressive agents that will eventually be applied in wide clinical use is not clear. While some new immunosuppressive agents have been more extensively tested clinically, BQR exhibits a number of unique features that make this compound particularly attractive for inclusion in new immunosuppressive regimens. The drug is readily soluble in aqueous solutions and can be administered intravenously or orally with equal effectiveness. Brequinar exhibits a high level of bioavailability following oral administration and an extended half-life that permits less frequent administration. While the metabolic byproducts of BQR have not been clearly described, there is good evidence that the parent compound exhibits the majority, if not all, of the immunosuppressive activity. The ability to monitor the parent drug directly or measure the depletion of enzyme products that reflect the activity of the drug are important features of the drug that simplify its use in a clinical setting. Although BQR exhibits important adverse side effects at high doses, the effects of the drug are characteristic of antimetabolites and are therefore predictable, constant, and reversible.(ABSTRACT TRUNCATED AT 400 WORDS)

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