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James A Matriano

Publications and source records attributed to James A Matriano.

2 recordsLinked to original sources

B cells engineered to express Fas ligand suppress pre-sensitized antigen-specific T cell responses in vivo.

Inducing apoptosis of activated lymphocytes via Fas ligand (FasL, CD95) may be a useful strategy for the treatment of autoimmune diseases mediated by pathogenic T cells. We propose that B cells may be ideal tools for effective delivery of a FasL-mediated apoptotic signal to pathogenic T cells for a variety of reasons, including their unique ability to efficiently take up and present antigen to T cells that share the same specificity. Here, we demonstrate that B cell clones engineered to express CD95 can effectively suppress a systemic primed antigen-specific T cell response in vivo. Intravenous injection of antigen-pulsed FasL-expressing B cells eliminated antigen-specific (TCR transgenic) T cells from the draining lymph nodes within 12-60 h, and suppressed a delayed-type hypersensitivity response in an antigen-specific manner. These results indicate that B cells can be engineered to express FasL, and used to impair T cell function in vivo, suggesting that FasL-expressing B cells may be an effective tool for the treatment of established T cell-mediated autoimmune and inflammatory diseases.

Animals↗

Macroflux microprojection array patch technology: a new and efficient approach for intracutaneous immunization.

PURPOSE: We evaluated the Macroflux microprojection array patch technology as a novel system for intracutaneous delivery of protein antigens. METHODS: Macroflux microprojection array systems (330-microm micro-projection length, 190 microprojections/cm2, 1- and 2-cm2 area) were coated with a model protein antigen, ovalbumin (OVA), to produce a dry-film coating. After system application, microprojection penetration depth, OVA delivery, and comparative immune responses were evaluated in a hairless guinea pig model. RESULTS: Macroflux microprojections penetrated into hairless guinea pig skin at an average depth of 100 microm with no projections deeper than 300 microm. Doses of I to 80 microg of OVA were delivered via 1- or 2-cm2 systems by varying the coating solution concentration and wearing time. Delivery rates were as high as 20 microg in 5 s. In a prime and boost dose immune response study, OVA-coated Macroflux was most comparable to equivalent doses injected intradermally. Higher antibody titers were observed when OVA was administered with the microprojection array or intradermally at low doses (1 and 5 microg). Macroflux administration at 1- and 5-microg doses gave immune responses up to 50-fold greater than that observed after the same subcutaneous or intramuscular dose. Dry coating an adjuvant, glucosaminyl muramyl dipeptide, with OVA on the Macroflux resulted in augmented antibody responses. CONCLUSIONS: Macroflux skin patch technology provides rapid and reproducible intracutaneous administration of dry-coated antigen. The depth of skin penetration targets skin immune cells; the quantity of antigen delivered can be controlled by formulation, patch wearing time, and system size. This novel needle-free patch technology may ultimately have broad applications for a wide variety of therapeutic vaccines to improve efficacy and convenience of use.

Administration, Cutaneous↗