ArticleSignal transduction and targeted therapy2025
CHIKV mRNA vaccines encoding conserved structural/envelope proteins confer broad cross-lineage protection against infection.
Article in Signal transduction and targeted therapy, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Capsid inclusion in a CHIKV mRNA vaccine impairs adaptive immune responses.Cell reports. Medicine · 2026Article
- Chikungunya virus: global epidemiology, transmission dynamics, and emerging challenges for public health.Infection · 2026Review
- The first key for the Priority Pathogens: Protective immunogens in development of vaccines and medications.Biosafety and health · 2026Review
- Tupaia belangeri better reflects the typical symptoms of Chikungunya virus infection than mice: A comparative study.Virologica Sinica · 2026Article
- From symptom management to immune prevention: a comprehensive review of chikungunya treatment and vaccine development.Folia microbiologica · 2026Review
- Genomic surveillance reveals multiple origins and local transmission of travel-associated chikungunya virus in Yunnan, China.BMC microbiology · 2026Article
- Pathogenesis of Chronic Arthritis Due to Chikungunya Virus and Advances in Vaccine Development.Viruses · 2026Review
- Accelerate the Highly Efficient Development of mRNA Vaccines Through Advanced Computational Methods.MedComm · 2026Review
- Advances and perspectives for animal models of chikungunya virus infection.Biosafety and health · 2025Review
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Authors and funding
25 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
With the broad spread of the chikungunya virus (CHIKV), there is an increasing demand for more effective and broadly protective vaccines. Here, we designed CHIKV mRNA vaccines containing full-length structural proteins or part of structural proteins (envelope proteins) based on conserved sequences from 769 viral strains encompassing four lineages. The vaccine induced strong cellular and humoral immune responses in BALB/c mice and provided robust protection. Immunization of BALB/c mice with either of the two vaccines induced high levels of neutralizing antibodies against pseudoviruses from four distinct lineages, highlighting their potential for broad cross-lineage protective efficacy. Immunoglobulin repertoire analysis revealed two important BCR V-J gene combinations, IgHV1-4-IgHJ3 and IgHV1-4-IgHJ2, and lineage-specific immunity analysis revealed significant upregulation of TCRs containing V19 and V20. BCR and TCR immunodiversity may be a potential reason for the broad-spectrum protection against CHIKV afforded by the vaccine. In A129 mice, it elicited lower levels of neutralizing antibodies but prevented mouse mortality and cleared chronic infection. In the rhesus macaque model, both vaccines elicited a certain level of humoral and cellular immune responses and protected the rhesus macaques from the CHIKV challenge. In conclusion, the results from both mouse and rhesus macaque models indicate that the vaccine could be a candidate for clinical use against CHIKV.
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