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Biomedical subjects

S M Stepkowski

Publications and source records attributed to S M Stepkowski.

At least 91 records · Page 5Linked to original sources

Inhibition of host-versus-graft and graft-versus-host responses after small bowel transplantation in rats by rapamycin.

The effect of rapamycin (RAPA) on both host-versus-graft (HVG) and graft-versus-host (GVH) immune responses was examined in small bowel transplant models using strongly histoincompatible donor-recipient combinations. Normal Wistar Furth (WFu; RT-1u) recipients rejected Buffalo (BUF; RT-1b) small bowel allografts within a mean survival time (MST) of 10.5 +/- 0.5 days. Administration of RAPA (0.8 mg/kg) by continuous intravenous infusion for 14 days via an osmotic pump prolonged graft survival to 25.0 +/- 4.6 days (P = 0.01). In a second strain combination, the 12.5 +/- 2.2 day survival of Brown Norway (BN; RT-1n) small bowel allografts in Lewis (RT-1l) recipients was prolonged to 21.6 +/- 2.0 and 28.5 +/- 2.8 days by 14 days of i.v. RAPA at doses of 0.8 and 1.6 mg/kg, respectively. In this model RAPA is five times more effective than cyclosporine, which at 4.0 mg/kg prolongs BN small bowel allografts in Lewis recipients to 21.6 +/- 6.3. To isolate HVG and GVH immune responses, (BN x Lewis)F1 hybrid rats served as the graft donor or host, respectively. In the HVG model, (BN x Lewis)F1 small bowel allografts, which were rejected by normal Lewis recipients at 12.2 +/- 3.6 days, were prolonged to 40.8 +/- 5.8 days (P = 0.001) by RAPA (0.8 mg/kg x 14 days). In the GVH model, the ability of Lewis small bowel allografts to produce severe GVH disease in untreated (BN x Lewis)F1 recipients at 12.3 +/- 2.8 days was delayed to 21.3 +/- 5.2 days by 0.8 mg/kg RAPA (P = 0.025). Thus, RAPA protects small bowel allografts more effectively against HVG than GVH immune responses.

Animals↗

Evidence that rapamycin rescue therapy delays rejection of major (MHC) plus minor (non-MHC) histoincompatible heart allografts in rats.

The capacity of delayed onset of rapamycin (RAPA) therapy to block process of destruction was examined in rats undergoing heart allograft rejection. Untreated Wistar Furth (WFu; RT-1u) recipients reject Buffalo (BUF; RT-1b) heart allograft with a mean survival time (MST) of 6.5 +/- 0.5 days. A 14-day i.v.infusion of 0.8 mg/kg RAPA begun on the day of transplantation prolonged the survival to 74.1 +/- 20.2 days (P < 0.001), 0.2 mg/kg to 32.2 +/- 10.0 days (P < 0.001), and 0.08 mg/kg to 36.4 +/- 11.8 days (P < 0.001). When RAPA therapy (0.8 mg/kg) was begun 3 or 4 days after transplantation, the grafts survived 85.2 +/- 31.1 (P < 0.001), and 70.2 +/- 43.3 (P < 0.005) days, respectively. Therapy initiated on day 5 was much less effective; most transplants were rejected within 10 days; one graft survived 32 and two grafts 60 days (MST = 17.6 +/- 20.0, NS). A 0.2 mg/kg RAPA dose prolonged graft survival with initial use on days 3 (31.6 +/- 12.2 days; P < 0.001) or 4 (31.4 +/- 8.1 days; P < 0.001) but not on day 5. The 0.08 mg/kg RAPA prolonged hearts only when started on day 3 (47.2 +/- 2.7 days; P < 0.001) but not on days 4 or 5. WFu recipients treated with a subtherapeutic dose of cyclosporine (1 mg/kg; 9.1 +/- 1.5 days) displayed prolonged heart allograft function when treated subsequently with RAPA (0.8 or 0.08) beginning from days 4, 5, or 6 postgrafting. These in vivo results are supported by in vitro experiments. The frequency of BUF alloreactive elements among normal WFu LN cells (fTc) was 337 +/- 139/10(6) T cells in limiting dilution assay. Addition of RAPA (1 muMol) at the beginning of culture significantly reduced (P < 0.025) the fTc to 17 +/- 6.6/10(6), or alternatively on days 4 or 6 to 37.3 +/- 20.0/10(6) and 58.6 +/- 21.8/10(6), respectively. Thus, both in vivo and in vitro data demonstrate that delayed RAPA therapy may interrupt alloimmune reactions.

Animals↗

Rapamycin, a potent immunosuppressive drug for vascularized heart, kidney, and small bowel transplantation in the rat.

The effectiveness of rapamycin (RAPA) was examined for heart, kidney, and small bowel allografts in rats. Untreated or vehicle only-infused Wistar Furth (RT1u) recipients rejected Buffalo (RT1b) heart allografts within a mean survival time (MST) of 6.5 +/- 0.5 and 6.3 +/- 0.5 days, respectively. In contrast, a 14-day continuous intravenous (i.v.) infusion by an osmotic pump of 0.08 mg/kg/day RAPA to WFu recipients prolonged BUF heart allograft survival to an MST of 34.4 +/- 12.1 days (P = 0.0001). There was a graded dose-response to 0.16 mg/kg (39.0 +/- 8.7 days; P = 0.0001), 0.32 mg/kg (55.7 +/- 3.3 days; P = 0.0001) and 0.8 mg/kg (48.0 +/- 3.6; P = 0.0001). Furthermore, intraarterial/intragraft but not i.v. infusion of 0.02 mg/kg/day prolonged BUF heart allografts--namely, an MST of 14.6 +/- 1.4 days versus 8.6 +/- 2.6 days (P = 0.0001), respectively. Local delivery doses of RAPA were about as effective as the same dose delivered i.v.: 0.08 mg/kg MST 37.0 +/- 18.3 days (P = 0.0001); 0.32 mg/kg, 40.0 +/- 3.9 days (P = 0.0001); and 0.8 mg/kg, 54.8 +/- 8.2 days (P = 0.0001). Systemic i.v. RAPA therapy with 0.08 or 0.8 mg/kg/day prolonged the survival of BUF kidney grafts in WFu recipients--namely, an MST of 52.7 +/- 42.7 (NS) and 90.2 +/- 62.4 (P = 0.001) days, respectively, versus an MST of 11.6 +/- 1.5 days in control WFu recipients only infused with vehicle. While normal WFu rats reject heterotopic BUF small bowel allografts within an MST of 10.0 days, a 14-day course of i.v. RAPA treatment significantly (P = 0.0001) prolonged small bowel allograft survival to an MST of 26.8 +/- 3.7 days.

Animals↗

Synergistic interactions of cyclosporine and rapamycin to inhibit immune performances of normal human peripheral blood lymphocytes in vitro.

Rapamycin, an actinomycete macrolide lactone that inhibits cytokine-induced immunoactivation, and cyclosporine, an endecapeptide that prevents transcription of lymphokine messenger RNA, display mutually synergistic interactions in vitro and in vivo. Using the rigorous median-effect analysis to dissect the nature of immunosuppressive drug interactions, rapamycin significantly augmented the inhibitory effects of cyclosporine and/or dexamethasone upon human peripheral blood lymphocyte activation by phytohemagglutinin, anti-CD3 monoclonal antibody, and mixed lymphocyte reaction. Furthermore, the addition of rapamycin potentiated the activity of cyclosporine to reduce cytotoxic cell generation and precursor frequency during in vitro alloactivation, using cell-mediated lympholysis and limiting dilution analyses, respectively. Similarly, cyclosporine potentiated the inhibitory effects of rapamycin upon proliferation of IL-2 (CTLL-2) and IL-6 (MH60.BSF-2) lymphokine-dependent cell lines. Lineweaver-Burk plots of the Michaelis-Menton equation suggested rapamycin inhibits IL-2 signal transduction in competitive, and IL-6 signal transduction in noncompetitive fashion, suggesting distinctive components of the various cytokine-receptor mechanisms. In vivo the cyclosporine/rapamycin combination exerted synergistic immunosuppression of rejection reactions in rats toward heterotopic cardiac allografts, using concentrations at which drugs were individually ineffective. These observations suggest that cyclosporine and rapamycin may be combined at significantly reduced doses to achieve unprecedented levels of immunosuppressive efficacy.

Cells, Cultured↗

In vitro correlates of in vivo therapy with cyclosporine to immunosuppress rejection of heterotopic rat cardiac allografts across strong (RT-1) plus weak (non-RT-1) histocompatibility differences.

This study correlated different oral cyclosporine doses with in vivo graft survival, blood and tissue drug levels, and in vitro immune performances. Wistar-Furth (WFu, RT-1u) hosts engrafted with heterotopic cardiac transplants from strongly histoincompatible Buffalo (BUF, RT-1b) rats were treated postoperatively with 14-day courses of different doses of CsA delivered per gavage. There was a graded prolongation of graft survival--namely, no effect at the 1.5 mg/kg dose; a modest effect at 3 mg/kg; a therapeutic effect at 5 mg/kg; and long-term unresponsiveness at 10 mg/kg. Whole blood, serum, and tissue CsA concentrations correlated with drug dose. On day 7 posttransplantation--that is, during the peak of the immune response of untreated recipients and midway during the period of daily CsA therapy--in vitro immune performances were examined in each experimental group. On the one hand, the mixed lymphocyte reaction of WFu host splenic T cells toward donor-type BUF stimulators poorly reflected the administered CsA dose. On the other hand, there was a good correlation between drug dose and both impaired cell-mediated lympholysis and reduced frequency of alloantigen-specific T cytotoxic cell precursors f(CTL)p. Animals treated with therapeutic doses of CsA showed different patterns of T cell-mediated lympholysis: 3 mg/kg did not prevent anti-BUF Tc cell sensitization; 5 mg/kg maintained f(CTL)p levels similar to the normal controls; and 10 mg/kg significantly reduced Tc clones against donor but not third-party targets. These data demonstrate that the fate of alloantigen-specific Tc clones activated in vivo depends upon the local drug concentration. Furthermore, the present studies suggest that CML and f(CTL)p afford useful in vitro indices of in vivo immunosuppression with CsA in rat cardiac allograft recipients.

Administration, Oral↗

Soluble antigen and cyclosporine-induced specific unresponsiveness in rats. Frequency of alloantigen-specific T cytotoxic cells in normal, sensitized, and unresponsive rats.

The cellular mechanisms of unresponsiveness induced with a combined KCl-extracted donor antigen (HAg) and CsA regimen were dissected by limiting-dilution (LD) assay. While untreated Wistar-Furth (WFu, RT1u) rats reject Buffalo (BUF, RT1b) heart allografts within a mean survival time of 6.6 +/- 0.5 days, recipients treated with 3 cycles of CsA alone (-1,0,1; 7,8,9; 15,16,17) maintained BUF heart allografts up to an MST of 22.5 +/- 8.9 days. When CsA was combined with BUF HAg (-1), BUF heart survival was further prolonged up to an MST of 34.2 +/- 6.6 days, while third-party BN HAg was ineffective (MST of 21.5 +/- 2.1 days). On day 10 postgrafting, the frequency of T cytotoxic cells (fTc) within the splenic pan-T-cell population was 1:1437 +/- 301 in CsA and 1:1087 +/- 438 in CsA/HAg treated recipients. In contrast, on day 30 postgrafting, both CsA and CsA/HAg treated WFu rats bearing functional BUF hearts showed within their splenic pan-T-cell populations a profound decrease in fTc to 1:2966 +/- 824 with CsA alone and to 1:4946 +/- 938 with CsA/HAg treatment. In contrast, both untreated WFu rats who rejected BUF heart allografts and CsA-treated WFu recipients who had rejected their BUF heart allografts on day 20 displayed an increased fTc to 696 +/- 243 and to 1:1169, respectively, when examined at day 30 postgrafting. Additionally, both the W3/25+ and OX8+ T cell subsets specifically suppressed the proliferative response of normal WFu T cells against BUF and, to a lesser degree, third-party BN irradiated stimulators. Thus, CsA-treated animals develop a potent specific-suppressor mechanism that is augmented by pretreatment with donor soluble antigen. This suppressor activity may decrease the frequency of alloantigen-specific Tc cells and thereby prolong the survival of BUF heart allografts.

Animals↗

In vitro analysis of T cell-mediated cytotoxicity displayed by rat heart allograft recipients rendered unresponsive by total-lymphoid irradiation and extracted donor antigen.

The addition of 3M KCl-extracted donor antigen (HAg) to immunosuppressive therapy with 16 Gy total lymphoid irradiation produces a significantly higher fraction of Wistar-Furth (WFu) recipients displaying indefinite survival of heterotopic buffalo (BUF) heart allografts, namely 80 versus 20%. The experiments presented herein analyzed the direct activity as well as estimated the potential precursor numbers at 1 and 3 months in treated recipients. At 1 month post-TLI/HAg therapy, recipients showed reduced proliferative responses in mixed lymphocyte reactions (MLR) in a specific pattern toward donor but not third-party stimulators. Both TLI/Graft and TLI/HAg/Graft groups showed a higher frequency of BUF antigen-directed T-cytotoxic cells (fTc) than TLI-treated, but nontransplanted, WFu hosts. In addition, the TLI/HAg group alone displayed alloantigen-specific suppressor cells that suppressed the MLR proliferative responses of normal spleen T cells against donor, but not third-party, alloantigens. At 3 months postirradition, both TLI/Graft and TLI/HAg/Graft groups displayed variable MLR proliferative responses toward donor and third-party alloantigens. Whereas nontransplanted, TLI-treated WFu rats recovered their fTc to normal levels at 3 months, the TLI and TLI/HAg treated recipients bearing functional heart allografts demonstrated significantly decreased splenic fTc. These results show that reduced numbers of cytotoxic cell precursors may afford more reliable indices of prolonged heart allograft survival than MLR responses. The observations suggest that TLI/HAg transplant hosts display both reduced cytotoxic precursors and activated suppressor elements.

Animals↗

Frequency of alloantigen-specific T cytotoxic cells in high- and low-responder recipients of class I MHC-disparate heart allografts.

Presentation of an isolated class I antigeneic disparity to PVG.1U (RT1u) high-responder recipients resulted in rapid PVG.R8 (RT1.AaBuDuCu) heart allograft rejection with a median survival time (MST) of 8.25 days, but indefinite PVG.R1 (RT1.AaBcDcCc) heart allograft survival in PVG (RT1c) low-responder recipients. (PVG.R8xPVG.1U)F1 heart allografts, which express half the RT1.Aa-encoded molecules present on PVG.R8 hearts, were rejected within an MST of 14.75 days by PVG.1U recipients. Despite these in vivo differences, normal PVG.1U rats display a frequency of anti-RT1.Aa-directed T cytotoxic (fTc) cells of 1:990 in spleen and 1:1240 in LN, which are similar to the fTc found in low-responder PVG rats of 1:950 in spleen and 1:1423 in LN. On day 5 postgrafting, PVG.1U recipients of PVG.R8 hearts showed an increased fTc within graft-infiltrating T cells to 1:151, and within spleen to 1:527, but the fTc remained unchanged in LN (1:1310). Either 30 or 100 days after PVG.R8 heart allograft rejection, PVG.1U rats displayed an increased fTc in spleen (1:405) but the fTc in LN remained unchanged (1:1165). In contrast, low-responder PVG recipients that bore functional PVG.R1 heart allografts revealed no change in the splenic fTc on day 5 (1:2073) or on day 14 (1:1246) postgrafting. Additional in vitro experiments revealed further differences between high and low responders; both purified sensitized W3/25+ (CD4) and OX8+ (CD8) T cells obtained from the high PVG.1U, but not the low PVG responder strain, proliferated well in MLR culture in response to class I alloantigens. These findings suggest that the W3/25+ T cell population may participate in the induction of rejection in high-responder PVG.1U rats.

Animals↗

Prolongation of heterotopic heart allograft survival by local delivery of continuous low-dose cyclosporine therapy.

The effectiveness of local versus systemic low-dose CsA (2 mg/kg/day) therapy delivered by osmotic pump for a 14-day continuous infusion was examined in the rat model. Systemic subtherapeutic CsA treatment of WFu recipients either by oral gavage or intravenously using an osmotic pump resulted in quick rejection of BUF heart allografts within a median survival time (MST) of 8 days in comparison with untreated controls (MST = 7 days). In contrast, direct local subtherapeutic CsA delivery to BUF heart allografts produced significantly (P less than 0.01) prolonged heart allograft survivals up to MST of 40 days. Splenic T cells, isolated on days 10 to 12 from locally immunosuppressed WFu recipients, revealed a nonspecifically reduced proliferative response toward alloantigens. Coculture experiments demonstrate that these T cells have the capacity to inhibit normal T cell proliferative responses in a nonspecific fashion either by their suppressor function or more likely by carrying CsA to the culture plate. In contrast, T cells isolated from WFu recipients three weeks after transplantation and tested in vitro demonstrated the presence in alloantigen specific T suppressor cells that coincided with a decreased frequency of alloantigen-specific T cytotoxic cells and may explain the extended heart allograft survival beyond the time of CsA delivery. CsA therapy delivered directly to the graft resulted in high CsA levels within the heart graft (1108 ng/0.1 g) but subtherapeutic levels in other tissues. These results demonstrate that local drug delivery is effective in inhibiting the rejection process within the graft itself, as manifested by prolonged heart allograft survival. Further, subtherapeutic CsA therapy facilitates development of Ts cells that may be responsible for the survival of heart allografts beyond the CsA delivery time.

Animals↗