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Biology subjects

Castillo, I.

Publications and source records attributed to Castillo, I..

4 recordsLinked to original sources

Identification of immunogenic and cross-reactive chikungunya virus-specific CD4+ T cell epitopes in chronic chikungunya viral arthritic disease in humans

Chikungunya virus (CHIKV), a mosquito-borne alphavirus, causes acute febrile illness that can progress into chronic chikungunya virus disease (CHIKVD) marked by persistent debilitating arthralgia. At present, the exact cause of chronic CHIKVD is not understood, and in humans, the targets of CD4+ T cells in CHIKV are currently unknown. Here, by stimulating peripheral blood mononuclear cells (PBMCs) collected from patients suffering from chronic CHIKVD with peptides spanning the entire CHIKV genome, we provide a comprehensive landscape of CHIKV CD4+ T cell epitopes. We identified 123 novel CD4+ T cell epitopes and three immunodominant regions in E1, nsP1 and CP proteins. The immunodominance of these E1, nsP1 and CP regions was mapped to optimal epitopes, characterized by the capacity to bind to many common HLA class II allelic variants. In addition, we designed and validated a new CHIKV-specific CD4+ T cell epitope megapool, spanning both structural and non-structural proteins, which can be a useful tool to study CHIKV-specific T cell responses in small blood volumes, typically available in pediatric or clinical samples. Finally, by in silico assessment of the conservation of the CHIKV proteome in a diverse set of alphaviruses, we defined CHIKV epitopes conserved across arthritogenic and encephalitic viruses. Overall, our work is the first to identify CD4+ T cell targets of CHIKV in humans, expanding our capacity to study the role of T cells in CHIKV pathogenesis and mapping targets of alphaviruses for vaccine design.

immunology↗

Chikungunya-virus-specific CD4+ T cells are associated with chronic chikungunya viral arthritic disease in humans

Chikungunya virus (CHIKV) is a mosquito-borne re-emerging viral infection that can cause chronic chikungunya viral arthritic disease (CHIKVD), which is characterized by incapacitating arthralgia and inflammation that can last for months to years following infection. Despite CHIKV outbreaks occurring worldwide and several vaccines currently in development, immune responses to CHIKV in humans remains largely understudied, and targets of T cell response are currently unknown. In this study, we tested peripheral blood mononuclear cells (PBMCs) collected from patients diagnosed with CHIKV infection during the 2014-2015 outbreak in Colombia against pools of overlapping peptides sequentially spanning each CHIKV protein. Using high-resolution flow cytometry, we detected robust CHIKV-specific CD4+, but not CD8+ T cell responses, in these patients. Patients still experiencing disease symptoms six years after infection displayed significantly stronger CHIKV- specific CD4+ T cell responses against nsP1, nsP2 and E2 proteins, compared to patients that resolved the infection. CHIKV-specific CD4+ T cells in symptomatic patients displayed a significantly lower Th1 CD4+ helper T cell responses and were enriched within the Th17 CD4+ helper subset, identifying tumor necrosis factor-alpha (TNF) as the predominantly produced cytokine. In conclusion, this study comprehensively characterizes the T cell response against CHIKV in humans during the chronic phase and provides insights into the role of T cells and possible treatment of CHIKVD.

immunology↗

Fc mediated pan-sarbecovirus protection after alphavirus vector vaccination

Two group 2B {beta}-coronaviruses (sarbecoviruses) have caused regional and global epidemics in modern history. The mechanisms of cross protection driven by the sarbecovirus spike, a dominant immunogen, are less clear yet critically important for pan-sarbecovirus vaccine development. We evaluated the mechanisms of cross-sarbecovirus protective immunity using a panel of alphavirus-vectored vaccines covering bat to human strains. While vaccination did not prevent virus replication, it protected against lethal heterologous disease outcomes in both SARS-CoV-2 and clade 2 bat sarbecovirus HKU3-SRBD challenge models. The spike vaccines tested primarily elicited a highly S1-specific homologous neutralizing antibody response with no detectable cross-virus neutralization. We found non-neutralizing antibody functions that mediated cross protection in wild-type mice were mechanistically linked to FcgR4 and spike S2-binding antibodies. Protection was lost in FcR knockout mice, further supporting a model for non-neutralizing, protective antibodies. These data highlight the importance of FcR-mediated cross-protective immune responses in universal pan-sarbecovirus vaccine designs.

microbiology↗

Structure and Neutralization Mechanism of a Human Antibody Targeting a Complex Epitope on Zika Virus

We currently have an incomplete understanding of why only a fraction of human antibodies that bind to flaviviruses block infection of cells. Here we define the footprint of a strongly neutralizing human monoclonal antibody (mAb G9E) with Zika virus (ZIKV) by both X-ray crystallography and cryo-electron microscopy. Flavivirus envelope (E) glycoproteins are present as homodimers on the virion surface, and G9E bound to a quaternary structure epitope spanning both E protomers forming a homodimer. As G9E mainly neutralized ZIKV by blocking a step after viral attachment to cells, we tested if the neutralization mechanism of G9E was dependent on the mAb cross-linking E molecules and blocking low-pH triggered conformational changes required for viral membrane fusion. We introduced targeted mutations to the G9E paratope to create recombinant antibodies that bound to the ZIKV envelope without cross-linking E protomers. The G9E paratope mutants that bound to a restricted epitope on one protomer poorly neutralized ZIKV compared to the wild-type mAb, demonstrating that the neutralization mechanism depended on the ability of G9E to cross-link E proteins. In cell-free low pH triggered viral fusion assay, both wild-type G9E, and epitope restricted paratope mutant G9E bound to ZIKV but only the wild-type G9E blocked fusion. We propose that, beyond antibody binding strength, the ability of human antibodies to cross-link E-proteins is a critical determinant of flavivirus neutralization potency.

microbiology↗