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Abatacept.

Abstract

Abatacept (Orencia) is the first in a new class of biologics known as selective costimulation modulators. It inhibits full activation of T cells and interacts with other cell types to affect additional mediators of the inflammatory cascade. The clinical efficacy of abatacept in patients with active rheumatoid arthritis, despite prior treatment with methotrexate or anti-tumor necrosis factor-alpha (anti-TNFalpha) therapies, has been investigated in two randomized, double-blind, placebo-controlled, multicenter, phase III trials of 6 or 12 months' duration. In these trials, patients received intravenous abatacept (fixed-dose regimen based on bodyweight) or placebo in addition to background disease-modifying anti-rheumatic drugs (DMARDs) other than anti-TNFalpha therapies. Relative to placebo, abatacept significantly improved signs and symptoms of disease assessed using American College of Rheumatology (ACR) 20, 50, and 70 criteria and specific improvement in physical function as measured by the Health Assessment Questionnaire Disability Index at 6 months and significantly slowed structural damage progression in joints at 12 months. Improvements in ACR 20, 50, and 70 response rates were maintained at the final assessment in the 12-month trial. Abatacept infusions were generally well tolerated. Acute infusion-related reactions occurred in 9% of abatacept and 6% of placebo recipients in phase III trials. Integrated safety data from five clinical trials showed that serious adverse events were reported in 13.6% of abatacept and 12.3% of placebo recipients and the incidence of serious infections was 3.0% and 1.9%. Abatacept administered with background biologic DMARDs appears to be less well tolerated than abatacept plus background nonbiologic DMARDs.

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BibTeXRIS

Pauline S Hervey, Susan J Keam. 2006. Abatacept.. https://doi.org/10.2165/00063030-200620010-00004

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T cell costimulation: a rational target in the therapeutic armamentarium for autoimmune diseases and transplantation.

T cells are central mediators of adaptive immunity. As such, they are involved in both normal immune responses (e.g., rejection of a transplanted organ) and abnormal ones (e.g., rheumatoid arthritis). T cells require both antigen-specific and costimulatory signals for their full activation. Advances in protein engineering and an increased understanding of the immune response have culminated in the evolution and creation of protein therapeutics that target specific costimulatory molecules. The selective costimulation modulator abatacept (CTLA-4Ig) binds to CD80 and CD86, blocking interaction with CD28, and is approved for the treatment of moderate to severe rheumatoid arthritis. Belatacept, currently enrolling phase III trials in renal transplantation, was rationally designed from abatacept to bind with more avidity to CD86, providing the more potent immunosuppressive properties required for immunosuppression in transplantation. This review describes the relevant immunology and summarizes recent clinical findings on these two molecules. Although both inhibit the CD28 costimulatory pathway, they are tailored for specific disease states--abatacept for autoimmune diseases and belatacept for transplantation.

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