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D'Onofrio, V.

Publications and source records attributed to D'Onofrio, V..

2 recordsLinked to original sources

LiteVax-adjuvanted influenza vaccine induces transient interferon-driven innate activation and accelerates early IgG3 responses in older adults

Vaccine immunogenicity declines with age due to immunosenescence, underscoring the need for improved adjuvants. LiteVax Adjuvant (LVA), a squalane-in-water emulsion containing carbohydrate fatty-acid monosulphate esters, has shown potential to enhance influenza vaccine responses, but its mechanisms in humans remain unclear. We performed a longitudinal systems vaccinology study in 56 younger (18-45 years) and older ([≥]60 years) adults receiving a quadrivalent influenza vaccine with or without LVA. Multi-omics analyses, including bulk and single-cell transcriptomics, flow cytometry, and serology, revealed that LVA induced a rapid, transient interferon-driven innate response, primarily in monocytes, associated with enhanced antigen processing and dendritic cell to T cell interactions. LVA promoted differentiation of influenza-specific CD4+ T cells toward CD45RO+ memory phenotypes, accelerated early IgG3 antibody responses, and increased IgG-producing plasmablast frequencies without affecting overall antibody magnitude. Importantly, LVA reduced age-related differences in early immune responses, improving response quality and supporting vaccine performance in older adults.

immunology↗

A unified network systems approach uncovers a core novel program underlying T follicular helper cell differentiation

T follicular helper (Tfh) cells are central to the adaptive immune response and exhibit remarkable functional diversity and plasticity. The complex nature of Tfh cell populations, inconsistent findings across experimental systems and potential differences across species have fueled ongoing debate regarding core regulatory pathways that govern Tfh differentiation. Many studies have experimentally investigated individual proteins and circuits involved in Tfh differentiation in limited contexts, each providing only a partial understanding of the process. To address this, we adopted a novel multi-scale network systems approach that incorporates both regulatory and protein-protein interactions. Our approach integrates diverse data types, captures regulation across multiple levels of immune system organization, and recapitulates known drivers. Further, we discover a core Tfh gene set that is conserved across tissue types and disease contexts, and is consistent across data modalities - bulk, single-cell and spatial. While components of this set have been individually reported, a novel aspect of our work lies in the discovery, characterization, and connectivity of this core signature using a single unbiased approach. Using this method, we also uncover a novel function of IL-12, a molecule with reported conflicting functions, in the regulation of Tfh differentiation. Notably, we find that, in both humans and mice, IL-12 is permissive for the differentiation of Tfh precursors, but blocks subsequent differentiation into GC Tfh cells. Overall, this work elucidates novel networks with unexplored roles in governing Tfh cell differentiation across species and tissues, paving the way for novel -therapeutic interventions.

immunology↗