Improved Humoral Immunity and Protection against Influenza Virus Infection with a 3d Porous Biomaterial Vaccine

Author:

Miwa Hiromi1,Antao Olivia Q.2ORCID,Kelly‐Scumpia Kindra M.3,Baghdasarian Sevana1,Mayer Daniel P.2,Shang Lily1,Sanchez Gina M.2,Archang Maani M.14,Scumpia Philip O.567,Weinstein Jason S2,Di Carlo Dino1789ORCID

Affiliation:

1. Department of Bioengineering University of California Los Angeles Los Angeles CA 90095 USA

2. Center for Immunity and Inflammation Rutgers New Jersey Medical School Newark NJ 07103 USA

3. Division of Cardiology Department of Medicine David Geffen School of Medicine University of California Los Angeles Los Angeles CA 90095 USA

4. MSTP Program David Geffen School of Medicine University of California Los Angeles Los Angeles CA 90095 USA

5. Division of Dermatology Department of Medicine David Geffen School of Medicine University of California Los Angeles Los Angeles CA 90095 USA

6. Department of Dermatology VA Greater Los Angeles Healthcare System Los Angeles CA 90073 USA

7. Jonsson Comprehensive Cancer Center University of California Los Angeles Los Angeles CA 90095 USA

8. Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles CA 90095 USA

9. California Nano Systems Institute (CNSI) University of California Los Angeles Los Angeles CA 90095 USA

Abstract

AbstractNew vaccine platforms that activate humoral immunity and generate neutralizing antibodies are required to combat emerging pathogens, including influenza virus. A slurry of antigen‐loaded hydrogel microparticles that anneal to form a porous scaffold with high surface area for antigen uptake by infiltrating immune cells as the biomaterial degrades is demonstrated to enhance humoral immunity. Antigen‐loaded‐microgels elicited a robust cellular humoral immune response, with increased CD4+ T follicular helper (Tfh) cells and prolonged germinal center (GC) B cells comparable to the commonly used adjuvant, aluminum hydroxide (Alum). Increasing the weight fraction of polymer material led to increased material stiffness and antigen‐specific antibody titers superior to Alum. Vaccinating mice with inactivated influenza virus loaded into this more highly cross‐linked formulation elicited a strong antibody response and provided protection against a high dose viral challenge. By tuning physical and chemical properties, adjuvanticity can be enhanced leading to humoral immunity and protection against a pathogen, leveraging two different types of antigenic material: individual protein antigen and inactivated virus. The flexibility of the platform may enable design of new vaccines to enhance innate and adaptive immune cell programming to generate and tune high affinity antibodies, a promising approach to generate long‐lasting immunity.

Funder

W. M. Keck Foundation

National Institute of Allergy and Infectious Diseases

Office of Naval Research

National Institute of Arthritis and Musculoskeletal and Skin Diseases

National Institutes of Health

LEO Fondet

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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