Engineering the lymph node environment promotes antigen-specific efficacy in type 1 diabetes and islet transplantation

Author:

Gammon Joshua M.,Carey Sean T.ORCID,Saxena VikasORCID,Eppler Haleigh B.,Tsai Shannon J.,Paluskievicz Christina,Xiong Yanbao,Li Lushen,Ackun-Farmmer Marian,Tostanoski Lisa H.ORCID,Gosselin Emily A.,Yanes Alexis A.,Zeng Xiangbin,Oakes Robert S.ORCID,Bromberg Jonathan S.,Jewell Christopher M.ORCID

Abstract

AbstractAntigen-specific tolerance is a key goal of experimental immunotherapies for autoimmune disease and allograft rejection. This outcome could selectively inhibit detrimental inflammatory immune responses without compromising functional protective immunity. A major challenge facing antigen-specific immunotherapies is ineffective control over immune signal targeting and integration, limiting efficacy and causing systemic non-specific suppression. Here we use intra-lymph node injection of diffusion-limited degradable microparticles that encapsulate self-antigens with the immunomodulatory small molecule, rapamycin. We show this strategy potently inhibits disease during pre-clinical type 1 diabetes and allogenic islet transplantation. Antigen and rapamycin are required for maximal efficacy, and tolerance is accompanied by expansion of antigen-specific regulatory T cells in treated and untreated lymph nodes. The antigen-specific tolerance in type 1 diabetes is systemic but avoids non-specific immune suppression. Further, microparticle treatment results in the development of tolerogenic structural microdomains in lymph nodes. Finally, these local structural and functional changes in lymph nodes promote memory markers among antigen-specific regulatory T cells, and tolerance that is durable. This work supports intra-lymph node injection of tolerogenic microparticles as a powerful platform to promote antigen-dependent efficacy in type 1 diabetes and allogenic islet transplantation.

Funder

Pharmaceutical Research and Manufacturers of America Foundation

U.S. Department of Health & Human Services | National Institutes of Health

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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