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S N Sehgal

Publications and source records attributed to S N Sehgal.

At least 19 recordsLinked to original sources

Therapeutic blood levels of sirolimus (rapamycin) in the allografted rat.

A study was conducted to determine the relationship among oral dose, trough whole blood levels, graft survival, and side effects in sirolimus-treated allografted rats. The heterotopic heart allograft model using Brown Norway donors and Lewis rat recipients was used. Rats were dosed daily with sirolimus or vehicle until graft failure or up to a maximum of 28 days. Upon graft failure, rats were bled for measurement of trough blood levels of drug and tissues sent for histopathologic analysis. Sirolimus blood concentration correlated positively with dose and graft survival. Significant graft survival occurred at whole blood trough levels of 0.5 ng/ml achieved at the 0.3 mg/kg/day dose. Analysis of the concentration-effect data using a sigmoidal Emax model calculated a whole blood EC50 of 2.0 ng/ml for graft survival. With mean trough concentrations of 7 ng/ml and higher, grafts survived after cessation of drug treatment. At the 0.8 mg/kg/day dose, there was a significant decrease in body weight gain in the rats. Histopathologic examination of sirolimus-treated animals detected thymic and lymphoid atrophy, both considered pharmacologic extensions of sirolimus's immunosuppressive activity and focal myocardial degeneration, an exacerbation of a spontaneous occurring lesion. These results demonstrate that sirolimus prolongs graft survival in rat in a concentration dependent manner with therapeutic whole blood levels of about 10 ng/ml.

Animals

Prolongation of renal allograft survival in a large animal model by oral rapamycin monotherapy.

We assessed the efficacy of 5 dose levels of oral rapamycin for prolonging renal allograft survival in pigs. Untreated and triple therapy groups (cyclosporine, azathioprine, and prednisone) served as controls. Immunosuppression was administered for 28 days posttransplant and then stopped. Rapamycin whole-blood concentrations were followed weekly. Chemistry, hematology, and lipid values were monitored post-transplant. For rapamycin-treated pigs, median survival time (MST) correlated with both dose and trough levels (ng/ml). All kidneys had some degree of rejection seen on necropsy. After rejection, pneumonia was the most common cause of death. No specific end-organ toxicity was noted on histopathologic examination. Triglyceride and cholesterol levels increased in all treated pigs (both rapamycin and triple therapy) vs. untreated controls--however, all values were within normal limits. Mean ALT levels increased in weeks 2 to 4 in the higher-dose rapamycin groups but returned to baseline in pigs surviving after the drug was stopped. ALT levels did not increase above twice normal in any group. Creatinine levels correlated with the degree of rejection seen on biopsy. We noted no other toxicities. We conclude that rapamycin, given as oral monotherapy, is an effective and safe immunosuppressant in our large animal renal allograft model. Outcome correlated with dose and whole-blood levels.

Administration, Oral

Rapamune (Sirolimus, rapamycin): an overview and mechanism of action.

Rapamycin (Sirolimus, Rapamune), a potent immunosuppressive agent, has been demonstrated to have remarkable activity in inhibiting allograft rejection in animal models of transplantation. It is currently in phase II clinical trials. Rapamycin belongs to the class of macrocyclic immunosuppressive drugs that are bioactive only when bound to immunophilins. Cyclosporin A and FK506, two other members of this class, selectively block the transcriptional activation of several cytokine genes, thereby inhibiting cytokine production. Although rapamycin and its structural analog FK506 bind to the same immunophilin (FKBP), rapamycin acts at a later stage in T-cell cycle progression by blocking cytokine-mediated signal transduction pathways. This inhibition is the consequence of modulation of activity of a target protein by the rapamycin: FKBP complex [sirolimus effector protein (SEP)]. Although the identification of SEP has recently been reported, its function in cell-cycle progression is not known. The biochemical events that rapamycin has been shown to inhibit are (a) activation of p70S6 kinase, (b) activation of cdk2/cyclin E complex, (c) phosphorylation of retinoblastoma protein, and (d) suppression of cdc2 and cyclin A transcription.

Animals

Rapamycin (sirolimus, rapamune).

Rapamycin is a novel immunosuppressive agent that is undergoing clinical trials for use in allograft rejection therapy. This paper reviews its in-vitro biological properties, the current state of knowledge concerning its mechanism of action, and its therapeutic applications.

Animals

Rapamycin, a potent inhibitor of T-cell function, prevents graft rejection in murine recipients of allogeneic T-cell-depleted donor marrow.

We investigated the ability of the macrolide antifungal agent rapamycin (RAPA) to inhibit the rejection of T-cell-depleted (TCD) donor bone marrow (BM) transplanted into major histocompatibility complex (MHC)-disparate irradiated recipients. RAPA (1.5 mg/kg) was administered for 14 days beginning on the day of transplant. In the present study, we have tested RAPA administration in two types of fully allogeneic BM transplantation (BMT) systems in which host T cells mediate the rejection of TCD BM grafts (DBA/1 transplanted into C57BL/6 and BALB/c transplanted into C57BL/6). In both instances, RAPA administration prevented the rejection of the donor graft, accelerated post-BMT hematopoietic recovery, and did not compromise recipient survival. Sequential post-BMT fluorescence-activated cell sorter analysis of the spleen showed that RAPA administration inhibited host CD4+ and CD8+ T-cell expansion that leads to graft rejection. To further investigate the effect of RAPA on T-cell subpopulations, we used two congenic donor mouse stains with isolated MHC class I (bm1) or class II (bm12) mutations. In these studies, we showed that RAPA administration can inhibit MHC class I-restricted CD8+ or class II-restricted CD4+ T-cell-mediated graft rejection without compromising recipient survival. The RAPA-facilitated alloengraftment is multilineage and durable. We have also shown that RAPA speeds hematopoietic recovery post-BMT. We conclude that RAPA represents a new therapeutic modality for promoting alloengraftment and accelerating hematopoietic recovery.

Animals

Rapamycin prolongs survival and arrests pathophysiologic changes in murine systemic lupus erythematosus.

OBJECTIVE: To evaluate the effects of oral rapamycin (RAPA), a macrolide immunosuppressant that has been shown to interfere with T cell activation events, on the course of spontaneous disease progression in the MRL/MpJ/lpr/lpr (MRL/l) mouse model of lupus. METHODS: RAPA treatment (6, 12, or 25 mg/kg 3 times per week) was evaluated by monitoring survival rates, autoantibody levels, and urinary albumin levels. Additionally, concanavalin A responsiveness, interleukin-2 (IL-2) production, lymphoid organ size, and histopathology were evaluated ex vivo. RESULTS: RAPA prevented the typical rise in anti-double-stranded DNA antibody and urinary albumin levels and prolonged survival. Spleen and lymph node sizes were significantly decreased, inflammatory changes in the lung, liver, kidney, spleen, lymph node, and thymus were significantly reduced, and T cell mitogen-stimulated splenocyte proliferation and IL-2 production were restored. CONCLUSION: Data from 3 independent experiments demonstrated that RAPA significantly reduced or prevented many pathologic features of lupus normally seen in the MRL/l mouse, and suggest that RAPA may be useful as a therapeutic agent in SLE in humans.

Administration, Oral

Renal effects of rapamycin in the spontaneously hypertensive rat.

The effects of rapamycin (RAPA), administered at therapeutic doses, were investigated in the spontaneously hypertensive rat (SHR). Additionally, the reversibility of RAPA's renal effects was investigated at a supratherapeutic dose. At doses that were active in preventing heart and kidney allograft rejection in the rat (0.01-0.08 mg/kg i.v.), RAPA had no effect on kidney function or rat body weight gain. At higher doses (0.8 mg/kg), RAPA produced significant changes in kidney function parameters and caused a loss in body weight. Histopathologic changes, including necrotizing vasculopathy and tubular atrophy, were noted at therapeutic doses. The effects of RAPA on kidney function were completely reversible after a 2-week washout period, though the histopathologic changes were still evident. These studies demonstrate that RAPA does not impair kidney function at therapeutic doses when administered for 2 weeks but does appear to accelerate the naturally occurring renal lesions of the SHR.

Animals

Murine recipients of fully mismatched donor marrow are protected from lethal graft-versus-host disease by the in vivo administration of rapamycin but develop an autoimmune-like syndrome.

We investigated the ability of the macrolide antifungal agent rapamycin (RAPA) to inhibit murine graft-vs-host disease induced across the MHC barrier. An optimum dose (1.5 mg/kg) given for 14 days beginning on the day of transplant (and then three times weekly until 1 mo) effectively and significantly (p < 0.001) protected 80% of irradiated B10.BR recipients of C57Bl/6 bone marrow/spleen grafts for over 90 days, whereas 80% of control mice died by day 37. Using a congenic model in which a mixture of Ly5.1+ bone marrow (T cell-depleted) and Ly5.2+ spleen cells allowed us to distinguish mature and immature cells, we found that RAPA inhibits the splenic expansion of mature donor-derived T cells in B10.BR recipients after bone marrow transplantation. In addition, phenotyping studies revealed that RAPA causes a massive reduction of immature CD4+CD8+ T cells in the thymus, indicating that RAPA probably interferes with maturation of immature CD3-CD4-CD8- T cells to CD4+CD8+ T cells. There was also a predilection toward development or intrathymic retention of the more mature CD3+CD4-CD8+ or CD3+CD4+CD8- cells in the thymus of long term survivors. These same observations were made in different experiments with mice given syngeneic bone marrow transplantation and RAPA. However, RAPA administration was associated with the occurrence of an autoimmune-like syndrome, consisting of ulcerative dermatitis, hepatic bile duct proliferation, and nondestructive lymphoid peribronchiolar infiltration of the lung. RAPA interfered with the deletion of potentially self-reactive T cells that occurs in thymic development. The failure of clonal deletion was observed in allogeneic and syngeneic transplants given RAPA, although only the allografted mice experienced an autoimmune-like syndrome. Some, but not all, of the nondeleted V beta populations were functionally active. These new findings bear certain dissimilarities to the syndrome and lesions observed with cyclosporin A treatment, particularly in the observation of bile duct proliferation and ulcerative skin lesions. Nonetheless, because of the potent effect of RAPA in preventing lethal graft-vs-host induced across the MHC, further investigation of the immune consequences of this highly effective compound is warranted.

Animals