Why the study?
EV-A71 can cause severe neurological diseases with fatality in infants and young children, but effective drugs remain lacking.
Does a vaccine strategy combining codon-deoptimization and high-fidelity substitutions decrease virulence while maintaining antigenicity and genome stability of EV-A71?
Does a vaccine strategy combining codon-deoptimization and high-fidelity substitutions decrease virulence while maintaining antigenicity and genome stability of EV-A71?
Simultaneous introduction of codon-deoptimized genome sequences and high-fidelity substitutions is a potential strategy to develop an attenuated, genetically stable vaccine seed virus for EV-A71.
Offers attenuated EV-A71 vaccine platform; leaves open pediatric efficacy and safety trials.
EV-A71 can cause severe neurological diseases with fatality in infants and young children, but there are still no effective drugs to date. Here, we developed a novel vaccine strategy with the combination of CD and HF substitutions to generate the genetically stable reverse genetics virus. We found that CD combined with HF polymerase decreased the virulence but maintained the antigenicity of the virus. This work demonstrated the simultaneous introduction of CD genome sequences and HF substitutions as a potential new strategy to develop attenuated vaccine seed virus. Our work provides insight into the development of a low-virulence candidate vaccine virus through a series of genetic editing of virus sequences while maintaining its antigenicity and genome stability, which will provide an additional strategy for next-generation vaccine development of EV-A71.
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Tsai et al. (2019) studied this question.
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