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Izadi, A.

Publications and source records attributed to Izadi, A..

3 recordsLinked to original sources

Dissecting the properties of circulating IgG against Group A Streptococcus through a combined systems antigenomics-serology workflow

Most individuals maintain circulating antibodies against various pathogenic bacteria as a consequence of previous exposures. However, it remains unclear to what extent these antibodies contribute to host protection. This knowledge gap is linked to the need for better methods to characterize antimicrobial polyclonal antibodies, including their antigen and epitope repertoires, subclass distribution, glycosylation status, and effector functions. Here, we showcase a generic mass spectrometry-based strategy that couples systems antigenomics and systems serology to characterize human antibodies directly in clinical samples. The method is based on automated affinity purification workflows coupled to an integrated suite of high-resolution MS-based quantitative, structural- and glyco-proteomics readouts. We focused on Streptococcus pyogenes (Group A Streptococcus; GAS), a major human pathogen still awaiting an approved vaccine. Our methodology reveals that both healthy and GAS infected individuals have circulating Immunoglobulin G (IgG) against a subset of genomically conserved streptococcal proteins, including numerous toxins and virulence factors. The antigen repertoire targeted by these antibodies was relatively constant across healthy individuals, but considerably changed in GAS bacteremia. Detailed analysis of the antigen-specific IgG indicates inter-individual variation regarding titers, subclass distributions, and Fc-signaling capacity, but not in epitope and Fc-glycosylation patterns. Importantly, we show that the IgG subclass has a major impact on the ability of GAS-antibodies to trigger immune signaling, in an antigen- and Fc receptor-specific fashion. Overall, these results uncover exceeding complexity in the properties of GAS-specific IgG, and showcase our methodology as high-throughput and flexible workflow to understand adaptive immune responses to bacterial pathogens. Significance statementMost people develop polyclonal antibodies against bacterial pathogens during infections but their structural and functional properties are poorly understood. Here, we showcase a combined systems antigenomics and systems serology strategy to quantify key antibody properties directly in clinical samples. We applied this method to characterize polyclonal antibody responses against Streptococcus pyogenes, a major human pathogen. We mapped the antigen and epitope landscape of anti-streptococcal antibodies circulating in healthy adult plasma, and their changes during blood infections. We further demonstrate the analytical power of our approach to resolve individual variations in the structure and effector functions of antigen-specific antibodies, including a dependency between immunoglobulin subclass and Fc-signaling capacity.

immunology↗

The increased hinge flexibility of an IgG1-IgG3 hybrid monoclonal enhances Fc-mediated protection against group A streptococci

Antibodies are central to the immune response against microbes. We have previously generated a protective IgG1 monoclonal antibody targeting the M protein, a critical virulence factor of Streptococcus pyogenes. Here, we generated this antibody in all human IgG subclasses and evaluated their function. Despite significantly reduced binding, the IgG3 subclass antibody demonstrated remarkably enhanced opsonic function. We hypothesized that increased Fc flexibility could explain this improved efficacy. We engineered a hybrid IgG subclass antibody, IgGh, containing the backbone of IgG1 with the hinge of IgG3, leaving the Fabs unchanged. The IgGh maintained a similar binding ability as IgG1 while gaining the strong opsonic function seen with IgG3. Molecular dynamics simulations of the different antibodies showed altered IgG Fab-antigen interactions, reflecting the differences observed in affinity. More importantly, when the antibodies were bound to the antigen, the simulations showed that the Fc of both IgGh and IgG3 exhibited extensive movement in 3D space relative to the M protein. The increased flexibility of IgGh directly translated to enhanced opsonic function and significantly increased the protection against infection with Streptococcus pyogenes in mice. Our findings demonstrate how altering Fc flexibility can improve Fc-mediated opsonic function and how modifications in the constant domain can regulate Fab-antigen interactions. In addition, the enhanced in vivo function of a more flexible IgG provides new therapeutic opportunities for monoclonal antibodies. One sentence summaryAntibody Fc flexibility in 3D space correlates with efficient Fc-mediated phagocytosis of streptococci

immunology↗

Protective non-neutralizing mAbs targets conserved opsonic epitopes on SARS-CoV-2 variants

Antibodies play a central role in the immune defense against SARS-CoV-2. There is substantial evidence supporting that Fc-mediated effector functions of anti-spike antibodies contribute to anti-SARS-Cov-2 immunity. We have previously shown that two non-neutralizing but opsonic mAbs, Ab81 and Ab94, are protective against lethal Wuhan SARS-CoV-2 infection in mice. The protective effect was comparable to a potent neutralizing antibody, Ab59. Here, we hypothesized that, unlike the neutralizing antibodies, non-neutralizing opsonic antibodies would have a higher likelihood of retaining their function to the mutated variants, potentially functioning as broadly protective mAbs. Most of the mutations on the SARS-CoV-2 variants cluster on neutralizing epitopes, leaving other epitopes unaltered. We observed that neutralizing antibodies lost binding to Omicron. In contrast, seven non-neutralizing opsonic antibodies retained nanomolar affinity towards Omicron, BA.2, BA.4, and BA.5. Focusing on the two protective non-neutralizing antibodies Ab81 and Ab94, we showed that they maintain their strong reactivity even to XBB, XBB1.5, and BQ1.1. In the case of Ab94, interestingly, it even has increased affinity towards all variants except for XBB, which is comparable to WT. Finally, we show that Ab94 and Ab81 have potent Fc-mediated functions in vitro against the XBB and BQ1.1 and that combining the mAbs in a cocktail further enhances the effect. These results show that protective non-neutralizing mAbs such as Ab94 and Ab81 can be a viable strategy for anti-SARS-CoV-2 mAb therapies against current and possibly future SARS-CoV-2 variants and that opsonic epitopes could have implications for vaccine design.

immunology↗