PubMed Health⌕ Search

PubMed · 7518845

Exaggerated and persistent cutaneous delayed-type hypersensitivity in transgenic mice whose epidermal keratinocytes constitutively express B7-1 antigen.

Abstract

Since mouse keratinocytes are tolerogenic antigen presenting cells for T cell activation, the expression of second signal molecules such as B7-1 was targeted to epidermal keratinocytes (KC) in vivo in transgenic mice. The expression vector used to create transgenic mice consisted of a keratin 14 promoter fused 5' to the full length open reading frame of the cDNA encoding mouse B7-1 (between 10 and 30 copies of the transgene per genome). Expression of B7-1 cell surface protein was assessed by in situ immunostaining of cryostat sections of tail skin with CTLA-4/Ig fusion protein, revealing high levels of cell surface expression of B7 by all epidermal KC of transgenic mice, and a lack of such expression in nontransgenic animals. The skin of such transgenic mice (derived from three different founder mice) was grossly and histologically normal, with normal numbers of Langerhans cells and dendritic epidermal T cells. Immunologic challenge of transgenic mice with epicutaneous haptens such as fluorescein isothiocyanate revealed enhanced and persistent delayed-type hypersensitivity responses, with an altered kinetics of resolution when compared with nontransgenic controls. These data indicate that in normal, nontransgenic mice, tolerogenic antigen presentation by KC plays an important physiologic role in damping T cell-mediated inflammation in the skin by competing with professional APC for TCR occupancy in antigen specific T-lymphocytes that migrate into the epidermis. This also implies that altered regulation of B7-1 gene expression by epidermal cells may account for skin "hyperresponsiveness" encountered in some chronic dermatologic disorders.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

A Nasir, B Ferbel, W Salminen, R K Barth, A A Gaspari. 1994. Exaggerated and persistent cutaneous delayed-type hypersensitivity in transgenic mice whose epidermal keratinocytes constitutively express B7-1 antigen.. https://doi.org/10.1172/jci117411

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Induction of regulatory cells and control of cellular but not vascular rejection by costimulation blockade in hamster-to-rat heart xenotransplantation.

BACKGROUND: In heart allograft in the rat, a sustained costimulation blockade with CTLA4Ig prevents alloreactive T-cell activation and promotes a long-term graft survival through the action of tolerogeneic dendritic cells. It is unclear whether similar mechanisms might occur after xenotransplantation. To test that hypothesis, we have analyzed the action of CTLA4Ig in a model of CD4(+)T cell-mediated xenograft rejection. METHODS: Hamster hearts were transplanted into LEW.1A rats receiving an accommodation-inducing treatment consisting of a short course administration of LF15-0195 and a daily administration of cyclosporine A (CSA). To achieve long-term delivery of CTLA4Ig, an intravenous administration of an adenovirus vector coding for mouse CTLA4Ig (Ad-CTLA4Ig) was added to the accommodation induction protocol. On day 40 post-transplantation, rejection was induced by CSA withdrawal. In other xenograft recipients, CD28/B7 costimulation was inhibited at that time only by injections of CTLA4Ig or anti-CD28 antibodies. Graft survival, immunohistology, as well as development of antibodies and regulatory cells were examined. RESULTS: Xenografts survived 6 days after CSA withdrawal in controls and were rejected, as previously described, through the action of CD4(+) xenoreactive T cells. Interfering with CD28/B7 costimulation inhibited this xenoreactive T cell response and delayed rejection to day 10. In recipients that had received Ad-CTLA4Ig, survival was prolonged to day 19 and this was accompanied by the appearance of regulatory cells exhibiting non-donor-specific suppressive activity dependent on IL-2, NO, and IDO. These regulatory cells were different from those previously identified after Ad-CTLA4Ig administration in heart allograft in the rat. In these recipients, rejection occurred as a consequence of an evoked anti-donor IgM response and complement activation and not of a cellular rejection as complement inhibition with cobra venom factor further prolonged xenograft survival. CONCLUSION: CD28/B7 blockade delays CD4(+) T cell-mediated rejection after CSA withdrawal in accommodated recipients of hamster heart xenografts. In addition, a sustained expression of CTLA4Ig has the potential of inducing cellular regulatory mechanisms. However, such treatment does not prevent the development of xenoreactive IgM antibodies that participate in vascular rejection processes in a complement-dependent manner.

Abatacept↗

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.

Abatacept↗

Inhibiting costimulatory activation of T cells : a viable treatment option for rheumatoid arthritis?

There is now good evidence that T cells play a central role in the inflammatory pathway that leads to the persistent synovitis that causes joint damage in rheumatoid arthritis (RA). T cells require two signals to become activated. The second step in the activation of T cells involves costimulatory pathways, the best described pathway being the binding of CD28 on T cells to CD80/86 on antigen-presenting cells. This observation has led to the development of a new category of biological response modifier. Abatacept is a fusion protein (cytotoxic T-lymphocyte-associated antigen-4 immunoglobulin [CTLA4Ig]); which blocks the binding of CD28 by avidly binding CD80/86. Without this costimulatory activation, the T cell becomes anergic. Abatacept has consistently been shown to improve the signs and symptoms of RA in phase II and phase III trials in patients with an inadequate response to methotrexate and anti-tumour necrosis factor (TNF) therapy. Onset of action is rapid and efficacy is maintained during the period of treatment. Recent trials have also provided evidence of improvement in quality-of-life measures and radiographic progression. The safety profile to date has also been favourable and supports the theory that targeting naive T cells early in the inflammatory pathway will lead to immunomodulation rather than immunosuppression. The evidence produced so far suggests that abatacept will be a useful addition to the available therapies for patients with RA.

Abatacept↗