bioRxiv Science⌕ Search

Biology subjects

El-Ayache, F.

Publications and source records attributed to El-Ayache, F..

3 recordsLinked to original sources

Evaluation of new adjuvants in enhancing the immune response to a candidate of Severe Fever with Thrombocytopenia Syndrome Virus vaccine.

Severe fever with thrombocytopenia syndrome (SFTS) is an emerging zoonotic disease caused by the tick-borne bunyavirus SFTSV. SFTSV is primarily transmitted by Haemaphysalis longicornis ticks and can cause a hemorrhagic fever-like illness characterized by high fever, thrombocytopenia, leukopenia, and multiorgan failure, with reported case-fatality rates ranging from 10% to over 30%. Despite its growing public health relevance, no licensed vaccines or specific antiviral therapies are currently available. Here, we evaluated a beta-propiolactone-inactivated SFTSV vaccine candidate based on strain YL1, formulated with benchmark adjuvants (Addavax and Alhydrogel) or experimental innate immune agonists, including Sendai virus-derived defective interfering RNA (SDI), a RIG-I agonist, and imidazoquinoline-poly(ethylene glycol)-cholesterol conjugate (IMDQ-P-C), a TLR7/8 agonist, alone or in combination. Using an extended prime-boost regimen, we examined adjuvant-dependent modulation of humoral immunity, antigen-specific cellular recall, antibody cross-reactivity, and functional protection following passive serum transfer and live-virus challenge in IFNAR-/- mice. All adjuvanted formulations induced detectable humoral responses, with Addavax and SDI eliciting the highest virus-specific binding and neutralizing antibody titers. Antigen-specific analyses identified the nucleoprotein (NP) as the dominant target of vaccine-induced immune memory. NP elicited robust antibody response and the broadest cytokine recall profile following ex vivo stimulation. This response was broader than that induced by the whole inactivated virus and was characterized by mixed Th1-associated, Th2-associated, and proinflammatory-associated features that varied across adjuvant formulations. In contrast, the head domain of the Gn glycoprotein elicited limited cellular recall responses, consistent with its relatively weak humoral immunogenicity after both priming and boosting. Nevertheless, sera from SDI and Addavax-adjuvanted groups displayed cross-reactivity with Gn from a heterologous SFTSV strain, suggesting broader antibody recognition across viral genotypes. Functionally, sera from SDI and Addavax-immunized mice conferred partial protection following passive transfer into IFNAR-/- recipients, as reflected by reduced viral loads, delayed disease onset, and prolonged survival after lethal SFTSV challenge. Together, these findings support the immunogenicity and protective potential of a BPL-inactivated SFTSV vaccine platform and identify NP as a major target of vaccine-induced immune memory. They further highlight the importance of adjuvant selection in shaping the magnitude, antigenic focus, and functional quality of vaccine-induced antiviral immunity.

microbiology↗

Adjuvanted mucosal vaccination enhances protection and prevents influenza virus transmission in the guinea pig model.

Influenza virus infects the respiratory mucosa, highlighting the importance of mucosal immunity for early protection and transmission control. Here, we evaluated whether intranasal (IN) vaccination with recombinant trimeric hemagglutinin protein from A/Michigan/45/2015 (triHA) formulated with a combined mucosal adjuvant, nanoemulsion plus IVT, an RNA-based RIG-I agonist (NE/IVT), could protect guinea pigs against heterologous A/Netherlands/602/2009 challenge and reduce viral transmission. To compare mucosal and parenteral immunization, IN triHA/NE/IVT was benchmarked against IN triHA alone, IM triHA/AddaVax (IM triHA/Advx), and standard IM quadrivalent inactivated influenza vaccine (QIV). We also tested whether IN triHA/NE/IVT could boost IM QIV- primed immunity and included animals previously infected with A/Michigan/45/2015 to model pre-existing infection- induced immunity. Transmission was assessed by co-housing naive sentinels with vaccinated, challenged donors. IN triHA/NE/IVT induced systemic humoral responses comparable to IM triHA/Advx while generating superior nasal mucosal IgA responses. Unexpectedly, IM triHA/AddaVax also induced detectable, albeit lower, mucosal IgG and IgA, contrasting with prior mouse data and highlighting species-specific differences. IN triHA/NE/IVT boosting after IM QIV enhanced serum IgG and mucosal IgA compared with QIV prime-boost alone and increased cross-neutralizing activity against antigenically distinct A/Victoria/4897/2022. Both IN triHA/NE/IVT and IN Michigan/15 prior- infection prevented detectable viral shedding after challenge, and naive sentinels co-housed with IN triHA/NE/IVT- vaccinated donors remained seronegative. Together, these findings support NE/IVT as a potential mucosal platform capable of inducing robust systemic and mucosal immunity and boosting IM vaccine-primed responses.

microbiology↗

A combination TLR7/8 and RIG-I agonist adjuvant reverts asthmatic allergic sensitization and prevents aggravated influenza infection in OVA-sensitized mice.

Allergen-specific immunotherapy (AIT) is the only disease-modifying treatment currently available to treat allergy. However, it has limitations, as most allergens are poorly immunogenic, resulting in an AIT process that can take years. Therefore, adjuvant selection becomes critical to achieve a more efficacious therapy. Our group has developed and tested an amphiphilic TLR7/8 agonist (IMDQ) and a RIG-I agonist (SDI) that used alone, or in combination, have demonstrated strong adjuvant activity for influenza and SARS-CoV-2 vaccines in preclinical models. Here we describe the effect of these adjuvants in the sensitization of preclinical models with the ovalbumin (OVA) asthmatic allergic model via an in-depth humoral and cellular immune profiling. We assess their immune skewing and tolerance inducing capacities in previously sensitized preclinical models with different genetic backgrounds (C57BL/6 vs. BALB/c mice). Moreover, we evaluate their effect in an unrelated antigenic challenge with influenza. Finally, we investigate the role of IgG subclasses and T-cell subpopulations in the protection against OVA challenge conferred by the combination of IMDQ and SDI. We demonstrate that OVA-immunization in combination with IMDQ+SDI prevents allergic sensitization via the induction of a balanced Type 1/Type 2 response. Furthermore, it can revert the allergic phenotype in mice previously sensitized with OVA-Alum, through reducing lung eosinophilia, as well as IL-4 and IL-5 production. However, this was dependent on genetic background. IMDQ+SDI sensitization also led to reduced morbidity of a secondary influenza challenge in OVA-sensitized mice. Finally, we demonstrated that IgG2c, by itself, cannot protect from allergic sensitization and that both CD4+ and CD8+ T-cells are needed for IMDQ+SDI prevention of eosinophil recruitment and activation upon intranasal OVA-challenge.

immunology↗