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Synthetically glycosylated antigens for the antigen-specific suppression of established immune responses.

Andrew C TremainRachel P WallaceKristen M LorentzThomas B ThornleyJennifer T AntaneMichal R RaczyJoseph W RedaAaron T AlparAnna J SlezakElyse A WatkinsChitavi D MaullooErica BudinaAni SolankiMindy NguyenDavid J BischoffJamie L HarringtonRabinarayan MishraGregory P ConleyRomain MarlinNathalie Dereuddre-BosquetAnne-Sophie GallouëtRoger LeGrandD Scott WilsonStephan KontosJeffrey A Hubbell
Published in: Nature biomedical engineering (2023)
Inducing antigen-specific tolerance during an established immune response typically requires non-specific immunosuppressive signalling molecules. Hence, standard treatments for autoimmunity trigger global immunosuppression. Here we show that established antigen-specific responses in effector T cells and memory T cells can be suppressed by a polymer glycosylated with N-acetylgalactosamine (pGal) and conjugated to the antigen via a self-immolative linker that allows for the dissociation of the antigen on endocytosis and its presentation in the immunoregulatory environment. We show that pGal-antigen therapy induces antigen-specific tolerance in a mouse model of experimental autoimmune encephalomyelitis (with programmed cell-death-1 and the co-inhibitory ligand CD276 driving the tolerogenic responses), as well as the suppression of antigen-specific responses to vaccination against a DNA-based simian immunodeficiency virus in non-human primates. Our findings show that pGal-antigen therapy invokes mechanisms of immune tolerance to resolve antigen-specific inflammatory T-cell responses and suggest that the therapy may be applicable across autoimmune diseases.
Keyphrases
  • immune response
  • dendritic cells
  • mouse model
  • regulatory t cells
  • endothelial cells
  • oxidative stress
  • toll like receptor
  • mesenchymal stem cells
  • type iii
  • electron transfer