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Author Spotlight: Optimizing CFU Determination for Efficient Assessment of TB Vaccine Efficacy and Antigen Presentation Analysis
Published on: July 28, 2023
Untranslated Region Sequences and the Efficacy of mRNA Vaccines against Tuberculosis
Vasiliy Reshetnikov1,2, Ilya Terenin1,3, Galina Shepelkova4
1Translational Medicine Research Center, Sirius University of Science and Technology, 354340 Sochi, Russia.
Abstract:
mRNA vaccines have been shown to be effective in combating the COVID-19 pandemic. The amount of research on the use of mRNAs as preventive and therapeutic modalities has undergone explosive growth in the last few years. Nonetheless, the issue of the stability of mRNA molecules and their translation efficiency remains incompletely resolved. These characteristics of mRNA directly affect the expression level of a desired protein. Regulatory elements of RNA-5' and 3' untranslated regions (UTRs)-are responsible for translation efficiency. An optimal combination of the regulatory sequences allows mRNA to significantly increase the target protein's expression. We assessed the translation efficiency of mRNA encoding of firefly luciferase with various 5' and 3'UTRs in vitro on cell lines DC2.4 and THP1. We found that mRNAs containing 5'UTR sequences from eukaryotic genes HBB, HSPA1A, Rabb, or H4C2, or from the adenoviral leader sequence TPL, resulted in higher levels of luciferase bioluminescence 4 h after transfection of DC2.4 cells as compared with 5'UTR sequences used in vaccines mRNA-1273 and BNT162b2 from Moderna and BioNTech. mRNA containing TPL as the 5'UTR also showed higher efficiency (as compared with the 5'UTR from Moderna) at generating a T-cell response in mice immunized with mRNA vaccines encoding a multiepitope antigen. By contrast, no effects of various 5'UTRs and 3'UTRs were detectable in THP1 cells, suggesting that the observed effects are cell type specific. Further analyses enabled us to identify potential cell type-specific RNA-binding proteins that differ in landing sites within mRNAs with various 5'UTRs and 3'UTRs. Taken together, our data indicate high translation efficiency of TPL as a 5'UTR, according to experiments on DC2.4 cells and C57BL/6 mice.
Insights
Messenger RNA (mRNA) translation efficiency is key for protein expression. This study identified specific 5' untranslated regions (UTRs) that significantly enhance mRNA translation, offering insights for improved vaccine and therapeutic development.
Area of Science:
- Molecular Biology
- Immunology
- Biotechnology
Background:
- Messenger RNA (mRNA) vaccines are crucial for combating pandemics like COVID-19.
- Optimizing mRNA stability and translation efficiency is critical for effective protein expression.
- RNA regulatory elements, specifically 5' and 3' untranslated regions (UTRs), significantly influence translation efficiency.
Purpose of the Study:
- To assess the translation efficiency of mRNA with various 5' and 3' UTRs.
- To compare the efficacy of different UTR sequences in enhancing protein expression.
- To investigate cell type-specific effects on mRNA translation and identify potential regulatory factors.
Main Methods:
- In vitro assessment of firefly luciferase mRNA translation efficiency using various 5' and 3' UTRs in DC2.4 and THP1 cell lines.
- Comparison of luciferase bioluminescence levels post-transfection.
- Evaluation of T-cell response in mice immunized with mRNA vaccines encoding a multiepitope antigen.
Main Results:
- mRNA sequences with 5'UTRs from HBB, HSPA1A, Rabb, H4C2, or the adenoviral leader sequence TPL showed higher luciferase expression in DC2.4 cells compared to current vaccine UTRs.
- The TPL 5'UTR demonstrated superior efficiency in generating a T-cell response in mice compared to the Moderna vaccine's 5'UTR.
- No significant effects of UTR variations were observed in THP1 cells, indicating cell type-specific regulation.
Conclusions:
- The adenoviral leader sequence TPL is a highly efficient 5'UTR for enhancing mRNA translation, particularly in DC2.4 cells and in vivo mouse models.
- Identified potential cell type-specific RNA-binding proteins that may mediate differential UTR effects.
- Findings provide valuable insights for designing next-generation mRNA therapeutics and vaccines with improved protein expression.
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