SVNanoVax · Structural Vaccinology in the design of bionanoparticles with multi-copy antigen display for vaccines with enhanced efficacy
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2015-06-15 → 2017-06-14
- EU contribution
- €168,277
- Participants
- 1
- Scheme
- MSCA-IF-EF-RI
Lines connect the coordinator with its partners.
Results in brief
Structural Vaccinology in the design of bionanoparticles with multi-copy antigen display for vaccines with enhanced efficacy
Over the last century, vaccination has been the most effective medical intervention to reduce death and morbidity caused by infectious diseases. However, despite these advances, many diseases are not yet preventable by vaccination and some groups (e.g., the elderly, populations of developing countries, pregnant women and neonates) remain vulnerable. Infectious diseases also demand further efforts. The highly mutagenic potential of many pathogens and the increasing prevalence of drug-resistance germs stresses the need of broadly protective vaccines capable of preventing disease. Compared to early vaccines containing killed or live-attenuated pathogens, modern sub-unit vaccines are safer but tend to be less immunogenic. Therefore, a key issue in vaccine research is how to improve their immunogenicity without reducing safety or tolerability. SVNanoVax aimed to combine the approach of Structural Vaccinology with vaccine antigen display on protein bionanoparticles (BNPs). Neisseria meningitidis serogroup B (MenB) causes severe sepsis and meningococcal meningitis, resulting in death or devastating long-term sequelae. Bexsero, an innovative research-based vaccine, is a multi-component vaccine composed of three meningococcal proteins plus outer membrane vesicles, and is conservatively estimated to provide 66-91% coverage against MenB strains worldwide. Thanks to the large amount of structural and immunological information of its components Bexsero represents an excellent tool to validate a BNPs-based antigen engineering strategy. The first objective was to engineer stable antigens eliciting broadly protective antibody responses. Secondly, we sought to determine the most significant epitopes from an immunomodulatory perspective. The following objectives were conceived to design recombinant self-assembling protein BNPs for multicopy and surface display of the selected epitopes, thus recreating the antigen vast exposure format of virus like particles. Lastly, we set out to determine if presentation of multiple copies of these antigens on self-assembling BNPs will induce stronger immune responses. The overall objectives of SVNanoVax focussed on the development of multi-copy antigen-BNPs for a second-generation vaccine against MenB that protects against all strains. Moreover, in addition to driving the development of an improved second-generation meningococcal vaccine with enhanced coverage, tolerability and efficacy, this research aimed at potentiating antigen-BNP technology possibly applicable to vaccines targeting other pathogens representing currently unmet medical needs. During the SVNanoVax period we have determined the 3D structure of a broadly reactive human bactericidal antibody Fab targeting an important MenB antigen. To our knowledge, this work represents the first crystal structure of a vaccine-elicited human antibody bound to a bacterial antigen. We have also developed a system for the recombinant expression of BNPs with surface exposed, multi-copy and ordered arrays of a potent MenB antigen epitope. These BNPs will be tested in parallel with the current vaccines in order to determine the scope of protection against MenB.
Data: CORDIS, © European Union
Project objective
Vaccines are the most effective way to protect humans from infectious disease and may save over 2 million lives per year (Delany, 2013). A key issue for future vaccines is how to improve immunogenicity without reducing safety (Bachmann, 2010). Another challenge is that high antigen sequence variability enables pathogens to escape the host response. To overcome these challenges, this proposal combines Structural Vaccinology and bionanoparticle (BNP) design, to generate novel self-assembling BNPs with multi-copy antigen display for the development of safe vaccine antigens with enhanced immunogenicity and breadth of coverage.We will generate antigen-BNPs for a 2nd generation vaccine against Neisseria meningitidis serogroup B (MenB), a major cause of sepsis and invasive disease (Pace, 2012). This research may also potentiate antigen-BNP technology suitable for other vaccines. Firstly, we will use functional (bactericidal) monoclonal antibodies to map the most protective epitopes on the 3D structures of two key MenB antigens, fHbp and NadA, which contribute strongly to our recently-approved 1st generation MenB vaccine, Bexsero (O’Ryan, 2014). To aid this, we have developed wide expertise in structure-focused epitope mapping (Malito, 2013). Secondly, we will design optimized antigens stably displaying the best epitopes, an approach that we have pioneered and termed ‘Structural Vaccinology’ (Scarselli, 2011). Finally, self-assembling protein bionanoparticles displaying ordered arrays of the optimized antigens will be prepared, in order to generate novel highly-immunogenic, broadly-protective MenB vaccine candidates.The proposal offers an exciting career development opportunity encompassing novel high-quality research to combine and deliver the promises of Structural Vaccinology and nanobiology, with a high probability of success to generate innovative new vaccine antigens for products to protect humans against meningococcal and other infectious diseases.
Original text from CORDIS.
Participants
- GLAXOSMITHKLINE VACCINES SRL · SIENACoordinatorItaly
Links
Data: CORDIS, © European Union
