About: Gusperimus is a research topic. Over the lifetime, 14 publications have been published within this topic receiving 658 citations. The topic is also known as: Gusperimus.
TL;DR: An overview of adverse drug interactions between these immunosuppressive agents, some of which are already approved for clinical use, while others are currently undergoing clinical trials is provided.
Abstract: Tacrolimus (FK506), mycophenolate mofetil, sirolimus (rapamycin), gusperimus, and monoclonal antibody preparations are new immunosuppressive agents, some of which are already approved for clinical use, while others are currently undergoing clinical trials. The present article provides an overview of adverse drug interactions between these immunosuppressants and other drugs which may be used concomitantly. Preliminary data suggest that a pharmacodynamic interaction can occur between tacrolimus and nonsteroidal anti-inflammatory drugs, associated with an increased risk of nephrotoxicity. Erythromycin, clarithromycin, clotrimazole, fluconazole, ketoconazole, and danazol have been shown to increase tacrolimus blood concentrations, while rifampicin (rifampicin) was found to decrease tacrolimus blood concentrations. Evidence from experimental studies suggest that several other drugs also known to affect cytochrome P450 activity may have significant effects on the pharmacokinetics of tacrolimus. On the other hand, tacrolimus itself may inhibit the metabolism of coadministered drugs. This interaction may be attributed to the enhanced renal impairment which has been observed in patients treated with tacrolimus and cyclosporin. The bioavailability of mycophenolic acid, the active metabolite of mycophenolate mofetil, has been reported to be reduced by aluminium/magnesium hydroxide-containing antacids and cholestyramine. Mycophenolic acid, sirolimus and gusperimus may impair bone marrow function and this adverse effect may be enhanced by concomitant administration of other myelosuppressive drugs. There is some evidence that coadministered sirolimus and cyclosporin cause an increase in each other's blood concentrations. An increased risk of central nervous system adverse effects has been described following the combined use of indomethacin and the monoclonal antibody muromonab CD3 (OKT3).
TL;DR: New immunosuppressants are under development and in clinical use, such as FK506, deoxyspergualin, OG 37-325, rapamycin, brequinar, and mycophenolate mofetil, thereby creating the possibility of many new drug-drug interactions.
Abstract: Solid organ transplant recipients depend on multiple immunosuppressive drugs, given in combination, to prevent rejection of their allografts. These patients often require many other therapeutic agents to treat underlying illnesses or concurrent diseases. Whenever a new medication is administered to a transplant patient, the potential exists for increasing or decreasing the tissue concentrations of immunosuppressive agents. This can lead to serious complications, such as over-immunosuppression and infection, under-immunosuppression and acute rejection, or additive toxicities, including nephrotoxicity. New immunosuppressants are under development and in clinical use, such as FK506, deoxyspergualin, OG 37-325, rapamycin, brequinar, and mycophenolate mofetil, thereby creating the possibility of many new drug-drug interactions.
TL;DR: These studies provide proof of principle in a preclinical model that prevention of both acute and chronic allograft rejection, for at least 2.2-4.9 years of follow-up, can be achieved in NHP in the absence of chronic immunosuppressive drugs or other interventions.
Abstract: We review a novel strategy for tolerance induction developed in rhesus macaques and termed STEALTH. We summarize the evolution of the STEALTH model, the results of successful trials in inducing long-term, stable transplant tolerance in rhesus kidney and diabetic islet recipients and discuss information related to the mechanism by which durable tolerance is induced. STEALTH tolerance is induced by a 3-day treatment course of CD3epsilon immunotoxin (IT) combined with a 14-day treatment with deoxyspergualin (DSG). IT causes profound depletion of sessile lymph node T cells as well as the more accessible circulating T cells. DSG, an inhibitor of HSC 70-mediated NF-kappaB nuclear translocation, arrests maturation of myeloid dendritic cells, blocks production of proinflammatory cytokines induced by IT administration, and promotes systemic production of Th2 type cytokines that persist indefinitely. Such Th2 cytokine deviation has not been reported in NHP transplant recipients. These studies provide proof of principle in a preclinical model that prevention of both acute and chronic allograft rejection, for at least 2.2-4.9 years of follow-up, can be achieved in NHP in the absence of chronic immunosuppressive drugs or other interventions. This strategy for inducing NHP tolerance is discussed in relation to current tolerance paradigms.
TL;DR: Tacrolimus and mycophenolate mofetil are 2 new immunosuppressive agents that have recently been approved for use and their mechanism of action and toxicity profile are similar to that of cyclosporin.
Abstract: Traditional cyclosporin-based immunosuppressive protocols are associated with relatively high incidences of early acute rejection and late graft loss due to chronic rejection. In addition, long-term immunosuppression with cyclosporin and corticosteroids has been associated with significant metabolic, infectious, malignant and cosmetic adverse effects. In the last decade, the goals of immunosuppression strategies have included not only short-term survival but also graft acceptance, with a low incidence of early acute rejection and minimal long-term toxicity. Tacrolimus and mycophenolate mofetil are 2 new immunosuppressive agents that have recently been approved for use. The mechanism of action and toxicity profile of tacrolimus are similar to that of cyclosporin. Tacrolimus reduces early acute rejection and is also effective in salvage of allografts with refractory rejection. A wide spectrum of adverse effects, including nephrotoxic, neurotoxic, gastrointestinal, metabolic and hematological effects, has been reported in association with tacrolimus but, unlike cyclosporin, this agent is not associated with hirsutism or gingival hyperplasia. Mycophenolate mofetil, an antimetabolite, has been effective in reducing early acute rejection and in treatment of refractory rejection when used in combination with cyclosporin instead of azathioprine. Its myelosuppressive and gastrointestinal toxicities are mild and reversible, but it may be associated with an increased risk of infections. Both agents permit early corticosteroid withdrawal. Other new immunosuppressive agents that act on different stages of the cell cycle but that have not yet been introduced for wide clinical use, including sirolimus (rapamycin), brequinar, mizoribine and gusperimus, are also discussed in this review
TL;DR: Newer immunosuppressive schedules should be designed, not only to reduce the risk of rejection, but also to obtain a better therapeutic index that allows a further improvement of the graft survival while minimising the comorbidity and drug-related toxicity.
Abstract: Promising immunosuppressive drugs designed to prevent rejection have been developed recently. Two monoclonal antibodies directed against the interleukin-2 (IL-2) receptor, daclizumab and basiliximab, have been shown to significantly reduce the incidence of acute rejection without increasing adverse events. Sirolimus (rapamycin), an agent that inhibits T- and B-response at a later stage than cyclosporin, has been shown to be synergistic with cyclosporin in experimental and clinical studies. Ongoing clinical trials have reported that in renal transplantation high doses of sirolimus are as effective as cyclosporin. SDZ-RAD, a derivative of sirolimus, is also under investigation. FTY-720 another promising drug, prolonged the survival of allografts and synergised with cyclosporin and sirolimus in experimental models. Gusperimus (deoxyspergualin), which inhibits IL-1 synthesis, was useful in reversing early and late acute rejection in clinical trials. Antisense oligonucleotides which interfere with intercellular adhesion molecules which are important in rejection, gave encouraging results in primate renal allografts.