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Myristoylation of EV71 VP4 is Essential for Infectivity and Interaction with Membrane Structure
Jiaming Cao1, Meng Qu1, Hongtao Liu1
1National Engineering Laboratory for AIDS Vaccine, School of Life Sciences, Jilin University, Changchun, 130012, China.
Abstract:
The Enterovirus 71 (EV71) VP4 is co-translationally linked to myristic acid at its amino-terminal glycine residue. However, the role of this myristoylation in the EV71 life cycle remains largely unknown. To investigate this issue, we developed a myristoylation-deficient virus and reporter (luciferase) pseudovirus with a Gly-to-Ala mutation (G2A) on EV71 VP4. When transfecting the EV71-G2A genome encoding plasmid in cells, the loss of myristoylation on VP4 did not affect the expression of viral proteins and the virus morphology, however, it did significantly influence viral infectivity. Further, in myristoylation-deficient reporter pseudovirus-infected cells, the luciferase activity and viral genome RNA decreased significantly as compared to that of wild type virus; however, cytopathic effect and viral capsid proteins were not detected in myristoylation-deficient virus-infected cells. Also, although myristoylation-deficient viral RNA and proteins were detected in the second blind passage of infection, they were much fewer in number compared to that of the wild type virus. The replication of genomic RNA and negative-strand viral RNA were both blocked in myristoylation-deficient viruses, suggesting that myristoylation affects viral genome RNA release from capsid to cytoplasm. Besides, loss of myristoylation on VP4 altered the distribution of VP4-green fluorescent protein protein, which disappeared from the membrane structure fraction. Finally, a liposome leakage assay showed that EV71 myristoylation mediates the permeability of the model membrane. Hence, the amino-terminal myristoylation of VP4 is pivotal to EV71 infection and capsid-membrane structure interaction. This study provides novel molecular mechanisms regarding EV71 infection and potential molecular targets for antiviral drug design.
Insights
Amino-terminal myristoylation of Enterovirus 71 (EV71) VP4 is crucial for viral infectivity and genome release. This study reveals myristoylation
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Enterovirus 71 (EV71) is a significant human pathogen.
- The VP4 protein of EV71 undergoes co-translational myristoylation.
- The functional role of EV71 VP4 myristoylation in the viral life cycle is largely unknown.
Purpose of the Study:
- To investigate the role of EV71 VP4 myristoylation in viral infectivity and replication.
- To elucidate the molecular mechanisms by which myristoylation influences EV71 infection.
Main Methods:
- Development of a myristoylation-deficient EV71 mutant (G2A) and reporter pseudovirus.
- Analysis of viral protein expression, morphology, infectivity, and genome replication.
- Liposome leakage assays to assess membrane permeability.
Main Results:
- Myristoylation-deficient EV71 (G2A) showed significantly reduced viral infectivity and genome RNA replication.
- Loss of myristoylation blocked genomic RNA release from the capsid and altered VP4 localization.
- EV71 myristoylation was shown to mediate model membrane permeability.
Conclusions:
- Amino-terminal myristoylation of EV71 VP4 is essential for viral infection and capsid-membrane interaction.
- Myristoylation plays a pivotal role in EV71 genome release.
- This study identifies potential molecular targets for antiviral drug development against EV71.
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