In vivo characterization of the physicochemical properties of polymer-linked TLR agonists that enhance vaccine immunogenicity
Vaccine efficacy is enhanced by optimizing the design of polymeric particles for adjuvant and antigen delivery. The efficacy of vaccine adjuvants such as Toll-like receptor agonists (TLRa) can be improved through formulation and delivery approaches. Here, we attached small molecule TLR-7/8a to polym...
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Veröffentlicht in: | Nature biotechnology 2015-11, Vol.33 (11), p.1201-1210 |
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Sprache: | eng |
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Zusammenfassung: | Vaccine efficacy is enhanced by optimizing the design of polymeric particles for adjuvant and antigen delivery.
The efficacy of vaccine adjuvants such as Toll-like receptor agonists (TLRa) can be improved through formulation and delivery approaches. Here, we attached small molecule TLR-7/8a to polymer scaffolds (polymer–TLR-7/8a) and evaluated how different physicochemical properties of the TLR-7/8a and polymer carrier influenced the location, magnitude and duration of innate immune activation
in vivo
. Particle formation by polymer–TLR-7/8a was the most important factor for restricting adjuvant distribution and prolonging activity in draining lymph nodes. The improved pharmacokinetic profile by particulate polymer–TLR-7/8a was also associated with reduced morbidity and enhanced vaccine immunogenicity for inducing antibodies and T cell immunity. We extended these findings to the development of a modular approach in which protein antigens are site-specifically linked to temperature-responsive polymer–TLR-7/8a adjuvants that self-assemble into immunogenic particles at physiologic temperatures
in vivo
. Our findings provide a chemical and structural basis for optimizing adjuvant design to elicit broad-based antibody and T cell responses with protein antigens. |
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ISSN: | 1087-0156 1546-1696 |
DOI: | 10.1038/nbt.3371 |