Engineered Curli Nanofilaments as a Self‐Adjuvanted Antigen Delivery Platform

Author:

Lamontagne Félix12345,Arpin Dominic12345,Côté‐Cyr Mélanie12345,Khatri Vinay1234,St‐Louis Philippe345,Gauthier Laurie345,Archambault Denis345,Bourgault Steve1234ORCID

Affiliation:

1. Department of Chemistry Université du Québec à Montréal C.P.8888, Succursale Centre‐Ville Montreal H3C 3P8 Canada

2. Quebec Network for Research on Protein Function Engineering and Applications (PROTEO) Quebec H3C 3P8 Canada

3. The Swine and Poultry Infectious Diseases Research Centre (CRIPA) Saint‐Hyacinthe J2S 2M2 Canada

4. The Center of Excellence in Research on Orphan Diseases – Fondation Courtois (CERMO‐FC) Montreal H3C 3P8 Canada

5. Department of Biological Sciences Université du Québec à Montréal C.P.8888, Succursale Centre‐Ville Montreal H3C 3P8 Canada

Abstract

AbstractProteinaceous nanoparticles constitute efficient antigen delivery systems in vaccine formulations due to their size and repetitive nature that mimic most invading pathogens and promote immune activation. Nonetheless, the coadministration of an adjuvant with subunit nanovaccines is usually required to induce a robust, long‐lasting, and protective immune response. Herein, the protein Curli‐specific gene A (CsgA), which is known to self‐assemble into nanofilaments contributing to bacterial biofilm, is exploited to engineer an intrinsically immunostimulatory antigen delivery platform. Three repeats of the M2e antigenic sequence from the influenza A virus matrix 2 protein are merged to the N‐terminal domain of engineered CsgA proteins. These chimeric 3M2e‐CsgA spontaneously self‐assemble into antigen‐displaying cross‐β‐sheet nanofilaments that activate the heterodimeric toll‐like receptors 2 and 1. The resulting nanofilaments are avidly internalized by antigen‐presenting cells and stimulate the maturation of dendritic cells. Without the need of any additional adjuvants, both assemblies show robust humoral and cellular immune responses, which translate into complete protection against a lethal experimental infection with the H1N1 influenza virus. Notably, these CsgA‐based nanovaccines induce neither overt systemic inflammation, nor reactogenicity, upon mice inoculation. These results highlight the potential of engineered CsgA nanostructures as self‐adjuvanted, safe, and versatile antigen delivery systems to fight infectious diseases.

Funder

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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