Key result
Reducing purine bias in viral mRNA increased stem-loop structure, enhanced viral protein synthesis, increased HLA-peptide complexes, and improved recognition by virus-specific T cells.
Why the study?
Does reducing purine bias in viral mRNA improve protein translation and T cell recognition in infected cells?
Does reducing purine bias in viral mRNA improve protein translation and T cell recognition in infected cells?
Viruses can evade CD8+ T cell-mediated immune regulation by using purine-biased mRNA lacking secondary structure to reduce protein translation and antigen presentation.
May inform antiviral strategies against latency; leaves open validation before any clinical translation.
Many viruses avoid immune surveillance during latent infection through reduction in the synthesis of virally encoded proteins. Although antigen presentation critically depends on the level of viral protein synthesis, the precise mechanism used to regulate the generation of antigenic peptide precursors remains elusive. Here, we demonstrate that a purine overloaded virally encoded mRNA lacking secondary structure significantly impacts the efficiency of protein translation and prevents endogenous antigen presentation. Reducing this purine bias through the generation of constructs expressing codon-modified sequences, while maintaining the encoded protein sequence, increased the stem-loop structure of the corresponding mRNA and dramatically enhanced self-synthesis of the viral protein. As a consequence, a higher number of HLA-peptide complexes were detected on the surface of cells expressing this viral protein. Furthermore, these cells were more efficiently recognized by virus-specific T cells compared with those expressing the same antigen expressed by a purine-biased mRNA. These findings delineate a mechanism by which viruses regulate self-synthesis of proteins and offer an effective strategy to evade CD8(+) T cell-mediated immune regulation.
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Tellam et al. (2008) studied Viral infection and immune evasion. Codon-modified sequences reducing purine bias vs. Purine-biased mRNA was evaluated on Efficiency of protein translation, endogenous antigen presentation, and T cell recognition. Reducing purine bias in viral mRNA increased stem-loop structure, enhanced viral protein synthesis, increased HLA-peptide complexes, and improved recognition by virus-specific T cells.
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