ABSTRACT
B cell receptor (BCR) sequencing is a powerful tool for interrogating immune responses to infection and vaccination, but it provides limited information about the antigen specificity of the sequenced BCRs. Here, we present LIBRA-seq (linking B cell receptor to antigen specificity through sequencing), a technology for high-throughput mapping of paired heavy- and light-chain BCR sequences to their cognate antigen specificities. B cells are mixed with a panel of DNA-barcoded antigens so that both the antigen barcode(s) and BCR sequence are recovered via single-cell next-generation sequencing. Using LIBRA-seq, we mapped the antigen specificity of thousands of B cells from two HIV-infected subjects. The predicted specificities were confirmed for a number of HIV- and influenza-specific antibodies, including known and novel broadly neutralizing antibodies. LIBRA-seq will be an integral tool for antibody discovery and vaccine development efforts against a wide range of antigen targets.
Subject(s)
Epitope Mapping/methods , Epitopes/chemistry , Receptors, Antigen, B-Cell/chemistry , Sequence Analysis, DNA/methods , Single-Cell Analysis/methods , Antibodies, Neutralizing/chemistry , Antibodies, Neutralizing/immunology , Antigens/chemistry , Antigens/immunology , Cells, Cultured , Epitopes/immunology , HEK293 Cells , HIV Antibodies/chemistry , HIV Antibodies/immunology , High-Throughput Nucleotide Sequencing/methods , High-Throughput Screening Assays/methods , Humans , Receptors, Antigen, B-Cell/immunology , THP-1 CellsABSTRACT
Continuously evolving influenza viruses cause seasonal epidemics and pose global pandemic threats. Although viral neuraminidase (NA) is an effective drug and vaccine target, our understanding of the NA antigenic landscape still remains incomplete. Here, we describe NA-specific human antibodies that target the underside of the NA globular head domain, inhibit viral propagation of a wide range of human H3N2, swine-origin variant H3N2, and H2N2 viruses, and confer both pre- and post-exposure protection against lethal H3N2 infection in mice. Cryo-EM structures of two such antibodies in complex with NA reveal non-overlapping epitopes covering the underside of the NA head. These sites are highly conserved among N2 NAs yet inaccessible unless the NA head tilts or dissociates. Our findings help guide the development of effective countermeasures against ever-changing influenza viruses by identifying hidden conserved sites of vulnerability on the NA underside.
Subject(s)
Influenza Vaccines , Influenza, Human , Orthomyxoviridae Infections , Humans , Animals , Mice , Swine , Viral Proteins/genetics , Neuraminidase , Influenza A Virus, H3N2 Subtype , Antibodies, Monoclonal , Antibodies, ViralABSTRACT
Broadly neutralizing antibodies (bnAbs) targeting the hemagglutinin (HA) stem of influenza A viruses (IAVs) tend to be effective against either group 1 or group 2 viral diversity. In rarer cases, intergroup protective bnAbs can be generated by human antibody paratopes that accommodate the conserved glycan differences between the group 1 and group 2 stems. We applied germline-engaging nanoparticle immunogens to elicit a class of cross-group bnAbs from physiological precursor frequency within a humanized mouse model. Cross-group protection depended on the presence of the human bnAb precursors within the B cell repertoire, and the vaccine-expanded antibodies enriched for an N55T substitution in the CDRH2 loop, a hallmark of the bnAb class. Structurally, this single mutation introduced a flexible fulcrum to accommodate glycosylation differences and could alone enable cross-group protection. Thus, broad IAV immunity can be expanded from the germline repertoire via minimal antigenic input and an exceptionally simple antibody development pathway.
Subject(s)
Antibodies, Neutralizing , Antibodies, Viral , Influenza A virus , Influenza Vaccines , Orthomyxoviridae Infections , Vaccination , Animals , Mice , Humans , Antibodies, Viral/immunology , Influenza Vaccines/immunology , Influenza A virus/immunology , Antibodies, Neutralizing/immunology , Orthomyxoviridae Infections/immunology , Orthomyxoviridae Infections/prevention & control , Hemagglutinin Glycoproteins, Influenza Virus/immunology , Amino Acid Substitution , B-Lymphocytes/immunology , Influenza, Human/immunology , Influenza, Human/prevention & control , Broadly Neutralizing Antibodies/immunologyABSTRACT
The present vaccine against influenza virus has the inevitable risk of antigenic discordance between the vaccine and the circulating strains, which diminishes vaccine efficacy. This necessitates new approaches that provide broader protection against influenza. Here we designed a vaccine using the hypervariable receptor-binding domain (RBD) of viral hemagglutinin displayed on a nanoparticle (np) able to elicit antibody responses that neutralize H1N1 influenza viruses spanning over 90 years. Co-display of RBDs from multiple strains across time, so that the adjacent RBDs are heterotypic, provides an avidity advantage to cross-reactive B cells. Immunization with the mosaic RBD-np elicited broader antibody responses than those induced by an admixture of nanoparticles encompassing the same set of RBDs as separate homotypic arrays. Furthermore, we identified a broadly neutralizing monoclonal antibody in a mouse immunized with mosaic RBD-np. The mosaic antigen array signifies a unique approach that subverts monotypic immunodominance and allows otherwise subdominant cross-reactive B cell responses to emerge.
Subject(s)
Hemagglutinin Glycoproteins, Influenza Virus/immunology , Influenza A Virus, H1N1 Subtype/immunology , Influenza Vaccines/immunology , Influenza, Human/immunology , Nanoparticles/chemistry , Orthomyxoviridae Infections/immunology , Animals , Antibodies, Neutralizing/administration & dosage , Antibodies, Neutralizing/immunology , Antibodies, Viral/immunology , B-Lymphocytes/drug effects , B-Lymphocytes/immunology , B-Lymphocytes/virology , Cross Reactions/drug effects , Cross Reactions/immunology , Female , Hemagglutinin Glycoproteins, Influenza Virus/chemistry , Humans , Immunization , Influenza A Virus, H1N1 Subtype/metabolism , Influenza A Virus, H1N1 Subtype/physiology , Influenza Vaccines/administration & dosage , Influenza Vaccines/chemistry , Influenza, Human/prevention & control , Influenza, Human/virology , Mice, Inbred BALB C , Orthomyxoviridae Infections/prevention & control , Orthomyxoviridae Infections/virologyABSTRACT
In the version of this article initially published, the labels (50 Å) above the scale bars in Fig. 1b were incorrect. The correct size is 50 nm. The error has been corrected in the HTML and PDF versions of the article.
ABSTRACT
Human broadly neutralizing antibodies (bnAbs) targeting the hemagglutinin stalk of group 1 influenza A viruses (IAVs) are biased for IGHV1-69 alleles that use phenylalanine (F54) but not leucine (L54) within their CDRH2 loops. Despite this, we demonstrated that both alleles encode for human IAV bnAbs that employ structurally convergent modes of contact to the same epitope. To resolve differences in lineage expandability, we compared F54 versus L54 as substrate within humanized mice, where antibodies develop with human-like CDRH3 diversity but are restricted to single VH genes. While both alleles encoded for bnAb precursors, only F54 IGHV1-69 supported elicitation of heterosubtypic serum bnAbs following immunization with a stalk-only nanoparticle vaccine. L54 IGHV1-69 was unproductive, co-encoding for anergic B cells and autoreactive stalk antibodies that were cleared from B cell memory. Moreover, human stalk antibodies also demonstrated L54-dependent autoreactivity. Therefore, IGHV1-69 polymorphism, which is skewed ethnically, gates tolerance and vaccine expandability of influenza bnAbs.
Subject(s)
Influenza A virus , Influenza Vaccines , Influenza, Human , Alleles , Animals , Antibodies, Neutralizing , Antibodies, Viral , Broadly Neutralizing Antibodies , Hemagglutinin Glycoproteins, Influenza Virus/genetics , Humans , Influenza, Human/prevention & control , MiceABSTRACT
Epstein-Barr virus (EBV) is nearly ubiquitous in adults. EBV causes infectious mononucleosis and is associated with B cell lymphomas, epithelial cell malignancies, and multiple sclerosis. The EBV gH/gL glycoprotein complex facilitates fusion of virus membrane with host cells and is a target of neutralizing antibodies. Here, we examined the sites of vulnerability for virus neutralization and fusion inhibition within EBV gH/gL. We developed a panel of human monoclonal antibodies (mAbs) that targeted five distinct antigenic sites on EBV gH/gL and prevented infection of epithelial and B cells. Structural analyses using X-ray crystallography and electron microscopy revealed multiple sites of vulnerability and defined the antigenic landscape of EBV gH/gL. One mAb provided near-complete protection against viremia and lymphoma in a humanized mouse EBV challenge model. Our findings provide structural and antigenic knowledge of the viral fusion machinery, yield a potential therapeutic antibody to prevent EBV disease, and emphasize gH/gL as a target for herpesvirus vaccines and therapeutics.
Subject(s)
Epstein-Barr Virus Infections , Herpesvirus 4, Human , Cricetinae , Mice , Animals , Humans , Viral Envelope Proteins , Cricetulus , Membrane Glycoproteins , CHO CellsABSTRACT
Current influenza vaccines predominantly induce immunity to the hypervariable hemagglutinin (HA) head, requiring frequent vaccine reformulation. Conversely, the immunosubdominant yet conserved HA stem harbors a supersite that is targeted by broadly neutralizing antibodies (bnAbs), representing a prime target for universal vaccines. Here, we showed that the co-immunization of two HA stem immunogens derived from group 1 and 2 influenza A viruses elicits cross-group protective immunity and neutralizing antibody responses in mice, ferrets, and nonhuman primates (NHPs). Immunized mice were protected from multiple group 1 and 2 viruses, and all animal models showed broad serum-neutralizing activity. A bnAb isolated from an immunized NHP broadly neutralized and protected against diverse viruses, including H5N1 and H7N9. Genetic and structural analyses revealed strong homology between macaque and human bnAbs, illustrating common biophysical constraints for acquiring cross-group specificity. Vaccine elicitation of stem-directed cross-group-protective immunity represents a step toward the development of broadly protective influenza vaccines.
Subject(s)
Influenza A Virus, H5N1 Subtype , Influenza A Virus, H7N9 Subtype , Influenza Vaccines , Influenza, Human , Orthomyxoviridae Infections , Animals , Mice , Humans , Hemagglutinins , Broadly Neutralizing Antibodies , Hemagglutinin Glycoproteins, Influenza Virus , Antibodies, Viral , Ferrets , Antibodies, Neutralizing , ImmunizationABSTRACT
Antibodies capable of neutralizing divergent influenza A viruses could form the basis of a universal vaccine. Here, from subjects enrolled in an H5N1 DNA/MIV-prime-boost influenza vaccine trial, we sorted hemagglutinin cross-reactive memory B cells and identified three antibody classes, each capable of neutralizing diverse subtypes of group 1 and group 2 influenza A viruses. Co-crystal structures with hemagglutinin revealed that each class utilized characteristic germline genes and convergent sequence motifs to recognize overlapping epitopes in the hemagglutinin stem. All six analyzed subjects had sequences from at least one multidonor class, and-in half the subjects-multidonor-class sequences were recovered from >40% of cross-reactive B cells. By contrast, these multidonor-class sequences were rare in published antibody datasets. Vaccination with a divergent hemagglutinin can thus increase the frequency of B cells encoding broad influenza A-neutralizing antibodies. We propose the sequence signature-quantified prevalence of these B cells as a metric to guide universal influenza A immunization strategies.
Subject(s)
Antibodies, Neutralizing/immunology , Antibodies, Viral/immunology , Influenza A virus/immunology , Influenza Vaccines/immunology , Adult , Amino Acid Sequence , Antibodies, Neutralizing/chemistry , Antibodies, Neutralizing/genetics , Antibodies, Viral/chemistry , Antibodies, Viral/genetics , B-Lymphocytes/immunology , Epitopes, B-Lymphocyte , Female , Gene Rearrangement, B-Lymphocyte, Heavy Chain , Humans , Immunologic Memory , Influenza A Virus, H5N1 Subtype/immunology , Male , Middle Aged , Models, Molecular , Protein Structure, Tertiary , Structure-Activity Relationship , Young AdultABSTRACT
Epstein-Barr virus (EBV) represents a major global health problem. Though it is associated with infectious mononucleosis and â¼200,000 cancers annually worldwide, a vaccine is not available. The major target of immunity is EBV glycoprotein 350/220 (gp350) that mediates attachment to B cells through complement receptor 2 (CR2/CD21). Here, we created self-assembling nanoparticles that displayed different domains of gp350 in a symmetric array. By focusing presentation of the CR2-binding domain on nanoparticles, potent neutralizing antibodies were elicited in mice and non-human primates. The structurally designed nanoparticle vaccine increased neutralization 10- to 100-fold compared to soluble gp350 by targeting a functionally conserved site of vulnerability, improving vaccine-induced protection in a mouse model. This rational approach to EBV vaccine design elicited potent neutralizing antibody responses by arrayed presentation of a conserved viral entry domain, a strategy that can be applied to other viruses.
Subject(s)
Herpesvirus Vaccines/chemistry , Herpesvirus Vaccines/immunology , Animals , Antibodies, Neutralizing/immunology , Crystallography, X-Ray , Drug Design , Female , Herpesvirus 4, Human , Herpesvirus Vaccines/genetics , Herpesvirus Vaccines/isolation & purification , Macaca fascicularis , Mice , Mice, Inbred BALB C , Nanoparticles/chemistry , Nanoparticles/ultrastructure , Receptors, Complement 3d/chemistry , Receptors, Complement 3d/immunology , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/immunology , Recombinant Proteins/isolation & purificationABSTRACT
Antibody paratopes are formed by hypervariable complementarity-determining regions (CDRH3s) and variable gene-encoded CDRs. The latter show biased usage in human broadly neutralizing antibodies (bnAbs) against both HIV and influenza virus, suggesting the existence of gene-endowed targeting solutions that may be amenable to pathway amplification. To test this, we generated transgenic mice with human CDRH3 diversity but simultaneously constrained to individual user-defined human immunoglobulin variable heavy-chain (VH) genes, including IGHV1-69, which shows biased usage in human bnAbs targeting the hemagglutinin stalk of group 1 influenza A viruses. Sequential immunization with a stalk-only hemagglutinin nanoparticle elicited group 1 bnAbs, but only in IGHV1-69 mice. This VH-endowed response required minimal affinity maturation, was elicited alongside pre-existing influenza immunity, and when IGHV1-69 B cells were diluted to match the frequency measured in humans. These results indicate that the human repertoire could, in principle, support germline-encoded bnAb elicitation using a single recombinant hemagglutinin immunogen.
Subject(s)
Antibodies, Viral/metabolism , B-Lymphocytes/immunology , Broadly Neutralizing Antibodies/metabolism , Influenza A virus/physiology , Influenza Vaccines/immunology , Influenza, Human/immunology , Receptors, Antigen, B-Cell/genetics , Animals , Antibodies, Viral/genetics , Antibody Affinity , Broadly Neutralizing Antibodies/genetics , Complementarity Determining Regions/genetics , Germ-Line Mutation/genetics , Hemagglutinin Glycoproteins, Influenza Virus/immunology , Humans , Immunity, Humoral , Immunization, Secondary , Immunoglobulin Heavy Chains/genetics , Mice , Mice, Transgenic , Nanoparticles , Protein EngineeringABSTRACT
Epstein-Barr virus (EBV) causes infectious mononucleosis and is associated with epithelial-cell cancers and B cell lymphomas. An effective EBV vaccine is not available. We found that antibodies to the EBV glycoprotein gH/gL complex were the principal components in human plasma that neutralized infection of epithelial cells and that antibodies to gH/gL and gp42 contributed to B cell neutralization. Immunization of mice and nonhuman primates with nanoparticle vaccines that displayed components of the viral-fusion machinery EBV gH/gL or gH/gL/gp42 elicited antibodies that potently neutralized both epithelial-cell and B cell infection. Immune serum from nonhuman primates inhibited EBV-glycoprotein-mediated fusion of epithelial cells and B cells and targeted an epitope critical for virus-cell fusion. Therefore, unlike the leading EBV gp350 vaccine candidate, which only protects B cells from infection, these EBV nanoparticle vaccines elicit antibodies that inhibit the virus-fusion apparatus and provide cell-type-independent protection from virus infection.
Subject(s)
Antibodies, Neutralizing/immunology , Antibodies, Viral/immunology , B-Lymphocytes/immunology , Epithelial Cells/immunology , Epstein-Barr Virus Infections/prevention & control , Herpesvirus 4, Human/immunology , Membrane Glycoproteins/immunology , Viral Envelope Proteins/immunology , Animals , B-Lymphocytes/virology , CHO Cells , Cell Fusion , Cell Line, Tumor , Cricetulus , Epithelial Cells/virology , Epstein-Barr Virus Infections/immunology , Female , HEK293 Cells , HeLa Cells , Humans , Immune Sera/administration & dosage , Macaca fascicularis , Male , Mice , Mice, Inbred BALB C , Vaccines, Virus-Like Particle/immunology , Viral Vaccines/immunology , Virus AttachmentABSTRACT
Vaccine-induced memory B cell responses to evolving viruses like influenza A involve activation of pre-existing immunity and generation of new responses. To define the contribution of these two types of responses, we analyzed the response to H7N9 vaccination in H7N9-naive adults. We performed comprehensive comparisons at the single-cell level of the kinetics, Ig repertoire, and activation phenotype of established pre-existing memory B cells recognizing conserved epitopes and the newly generated memory B cells directed toward H7 strain-specific epitopes. The recall response to conserved epitopes on H7 HA involved a transient expansion of memory B cells with little observed adaptation. However, the B cell response to newly encountered epitopes was phenotypically distinct and generated a sustained memory population that evolved and affinity matured months after vaccination. These findings establish clear differences between newly generated and pre-existing memory B cells, highlighting the challenges in achieving long-lasting, broad protection against an ever-evolving virus.
Subject(s)
B-Lymphocyte Subsets/immunology , B-Lymphocytes/immunology , Influenza A Virus, H7N9 Subtype/physiology , Influenza Vaccines/immunology , Influenza, Human/immunology , Adult , Antibodies, Viral/metabolism , Antibody Formation , Cells, Cultured , Epitopes/immunology , Female , Hemagglutinin Glycoproteins, Influenza Virus/immunology , Humans , Immunologic Memory , Lymphocyte Activation , Male , Middle Aged , Phenotype , Receptors, Antigen, B-Cell/genetics , Single-Cell Analysis , Vaccination , Young AdultABSTRACT
Influenza vaccines that confer broad and durable protection against diverse viral strains would have a major effect on global health, as they would lessen the need for annual vaccine reformulation and immunization1. Here we show that computationally designed, two-component nanoparticle immunogens2 induce potently neutralizing and broadly protective antibody responses against a wide variety of influenza viruses. The nanoparticle immunogens contain 20 haemagglutinin glycoprotein trimers in an ordered array, and their assembly in vitro enables the precisely controlled co-display of multiple distinct haemagglutinin proteins in defined ratios. Nanoparticle immunogens that co-display the four haemagglutinins of licensed quadrivalent influenza vaccines elicited antibody responses in several animal models against vaccine-matched strains that were equivalent to or better than commercial quadrivalent influenza vaccines, and simultaneously induced broadly protective antibody responses to heterologous viruses by targeting the subdominant yet conserved haemagglutinin stem. The combination of potent receptor-blocking and cross-reactive stem-directed antibodies induced by the nanoparticle immunogens makes them attractive candidates for a supraseasonal influenza vaccine candidate with the potential to replace conventional seasonal vaccines3.
Subject(s)
Broadly Neutralizing Antibodies/immunology , Influenza A virus/classification , Influenza A virus/immunology , Influenza Vaccines/immunology , Influenza, Human/immunology , Influenza, Human/prevention & control , Nanomedicine , Nanoparticles , Animals , Disease Models, Animal , Female , Ferrets/immunology , Ferrets/virology , Hemagglutinin Glycoproteins, Influenza Virus/chemistry , Hemagglutinin Glycoproteins, Influenza Virus/immunology , Humans , Influenza A Virus, H1N1 Subtype/immunology , Influenza A Virus, H3N2 Subtype/immunology , Influenza Vaccines/administration & dosage , Influenza Vaccines/chemistry , Influenza, Human/virology , Male , Mice , Mice, Inbred BALB C , Models, MolecularABSTRACT
Human enteroviruses are the most common human pathogen with over 300 distinct genotypes. Previous work with poliovirus has suggested that it is possible to generate antibody responses in humans and animals that can recognize members of multiple enterovirus species. However, cross protective immunity across multiple enteroviruses is not observed epidemiologically in humans. Here we investigated whether immunization of mice or baboons with inactivated poliovirus or enterovirus virus-like-particles (VLPs) vaccines generates antibody responses that can recognize enterovirus D68 or A71. We found that mice only generated antibodies specific for the antigen they were immunized with, and repeated immunization failed to generate cross-reactive antibody responses as measured by both ELISA and neutralization assay. Immunization of baboons with IPV failed to generate neutralizing antibody responses against enterovirus D68 or A71. These results suggest that a multivalent approach to enterovirus vaccination is necessary to protect against enterovirus disease in vulnerable populations.
Subject(s)
Antibodies, Viral , Cross Reactions , Enterovirus Infections , Poliovirus Vaccine, Inactivated , Animals , Mice , Cross Reactions/immunology , Antibodies, Viral/immunology , Enterovirus Infections/immunology , Enterovirus Infections/prevention & control , Enterovirus Infections/virology , Poliovirus Vaccine, Inactivated/immunology , Poliovirus Vaccine, Inactivated/administration & dosage , Vaccines, Virus-Like Particle/immunology , Antibodies, Neutralizing/immunology , Papio/immunology , Humans , Poliovirus/immunology , Female , Antibody Formation/immunology , Enterovirus/immunology , Mice, Inbred BALB C , Enterovirus D, Human/immunologyABSTRACT
Despite the availability of seasonal vaccines and antiviral medications, influenza virus continues to be a major health concern and pandemic threat due to the continually changing antigenic regions of the major surface glycoprotein, hemagglutinin (HA). One emerging strategy for the development of more efficacious seasonal and universal influenza vaccines is structure-guided design of nanoparticles that display conserved regions of HA, such as the stem. Using the H1 HA subtype to establish proof of concept, we found that tandem copies of an alpha-helical fragment from the conserved stem region (helix-A) can be displayed on the protruding spikes structures of a capsid scaffold. The stem region of HA on these designed chimeric nanoparticles is immunogenic and the nanoparticles are biochemically robust in that heat exposure did not destroy the particles and immunogenicity was retained. Furthermore, mice vaccinated with H1-nanoparticles were protected from lethal challenge with H1N1 influenza virus. By using a nanoparticle library approach with this helix-A nanoparticle design, we show that this vaccine nanoparticle construct design could be applicable to different influenza HA subtypes. Importantly, antibodies elicited by H1, H5, and H7 nanoparticles demonstrated homosubtypic and heterosubtypic cross-reactivity binding to different HA subtypes. Also, helix-A nanoparticle immunizations were used to isolate mouse monoclonal antibodies that demonstrated heterosubtypic cross-reactivity and provided protection to mice from viral challenge via passive-transfer. This tandem helix-A nanoparticle construct represents a novel design to display several hundred copies of non-trimeric conserved HA stem epitopes on vaccine nanoparticles. This design concept provides a new approach to universal influenza vaccine development strategies and opens opportunities for the development of nanoparticles with broad coverage over many antigenically diverse influenza HA subtypes.
Subject(s)
Influenza A Virus, H1N1 Subtype , Influenza Vaccines , Influenza, Human , Nanoparticles , Animals , Mice , Humans , Hemagglutinins , Epitopes , Antibody FormationABSTRACT
Combined vaccine formulations targeting not only hemagglutinin but also other influenza virus antigens could form the basis for a universal influenza virus vaccine that has the potential to elicit long-lasting, broadly cross-reactive immune responses. Lipid nanoparticle (LNP)-encapsulated messenger RNA (mRNA) vaccines can be utilized to efficiently target multiple antigens with a single vaccine. Here, we assessed the immunogenicity and protective efficacy of nucleoside-modified mRNA-LNP vaccines that contain four influenza A group 2 virus antigens (hemagglutinin stalk, neuraminidase, matrix protein 2, and nucleoprotein) in mice. We found that all vaccine components induced antigen-specific cellular and humoral immune responses after administration of a single dose. While the monovalent formulations were not exclusively protective, the combined quadrivalent formulation protected mice from all challenge viruses, including a relevant H1N1 influenza virus group 1 strain, with minimal weight loss. Importantly, the combined vaccine protected from morbidity at a dose of 125 ng per antigen after a single vaccination in mice. With these findings, we confidently conclude that the nucleoside-modified mRNA-LNP platform can be used to elicit protection against a large panel of influenza viruses.
Subject(s)
Influenza A Virus, H1N1 Subtype , Influenza Vaccines , Influenza, Human , Orthomyxoviridae Infections , Mice , Animals , Humans , Influenza A Virus, H1N1 Subtype/genetics , Nucleosides , Hemagglutinins , Vaccines, Combined , RNA, Messenger/genetics , Antibodies, Viral , Vaccination , Hemagglutinin Glycoproteins, Influenza Virus , mRNA VaccinesABSTRACT
Eliciting broadly protective antibodies is a critical goal for the development of more effective vaccines against influenza. Optimizing protection is of particular importance in newborns, who are highly vulnerable to severe disease following infection. An effective vaccination strategy for this population must surmount the challenges associated with the neonatal immune system as well as mitigate the inherent immune subdominance of conserved influenza virus epitopes, responses to which can provide broader protection. Here, we show that prime-boost vaccination with a TLR7/8 agonist (R848)-conjugated influenza A virus vaccine elicits antibody responses to the highly conserved hemagglutinin stem and promotes rapid induction of virus neutralizing stem-specific antibodies following viral challenge. These findings support the efficacy of R848 as an effective adjuvant for newborns and demonstrate its ability to enhance antibody responses to subdominant antigenic sites in this at-risk population.
Subject(s)
Antibody Formation , Influenza Vaccines , Orthomyxoviridae Infections , Adjuvants, Immunologic , Animals , Animals, Newborn , Antibodies, Neutralizing/blood , Antibodies, Viral/blood , Hemagglutinin Glycoproteins, Influenza Virus/immunology , Immunization, Secondary , Immunoglobulin G/blood , Influenza A Virus, H1N1 Subtype/immunology , Influenza Vaccines/immunology , Mice, Inbred BALB C , Orthomyxoviridae Infections/prevention & control , PrimatesABSTRACT
The development of a universal influenza vaccine that can provide a robust and long-lasting protection against a broader range of influenza virus strains is a global public health priority. One approach to improve vaccine efficacy is to use an adjuvant to boost immune responses to the target antigens; nevertheless, the role of adjuvants in the context of influenza vaccines is not fully understood. We have previously developed the K3-schizophyllan (SPG) adjuvant, which is composed of nanoparticulated oligodeoxynucleotides K3, a TLR9 agonist, with SPG, a non-agonistic ß-glucan ligand of Dectin-1. In this study, K3-SPG given with conventional influenza hemagglutinin (HA) split vaccine (K3-SPG HA) conferred protection against antigenically mismatched heterologous virus challenge. While K3-SPG HA elicited robust cross-reactive HA-specific IgG2c and CD8 T-cell responses, CD8 T-cell depletion had no impact on this cross-protection. In contrast, K3-SPG HA was not able to confer protection against heterologous virus challenge in FcRγ-deficient mice. Our results indicated that FcγR-mediated antibody responses induced by the HA antigen and K3-SPG adjuvant were important for potent protection against antigenically mismatched influenza virus infection. Thus, we demonstrated that the K3-SPG-adjuvanted vaccine strategy broadens protective immunity against influenza and provides a basis for the development of next-generation influenza vaccines.
Subject(s)
Hemagglutinins, Viral/immunology , Influenza Vaccines/immunology , Influenza, Human/immunology , Nanoparticles/chemistry , Orthomyxoviridae Infections/immunology , Receptors, Fc/immunology , Animals , Female , Humans , Influenza Vaccines/chemistry , Mice , Mice, Inbred C57BL , Toll-Like Receptor 9/agonists , Toll-Like Receptor 9/immunologyABSTRACT
Technological advances in immunology, protein design, and genetic delivery have unlocked new possibilities for vaccine concepts and delivery technologies that were previously inaccessible. These next-generation vaccine design efforts are particularly promising in their potential to provide solutions to challenging targets for which conventional approaches have proven ineffective-for example, a universal influenza vaccine. In this perspective, we discuss emerging approaches to vaccine design and engineering based on recent insights into immunology, structural biology, computational biology, and immunoengineering. We anticipate that these cutting-edge, interdisciplinary approaches will lead to breakthrough vaccine concepts for ever-evolving and (re)emerging influenza viruses, with important ramifications for global public health.