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An Oligonucleotide-based Tandem RNA Isolation Procedure to Recover Eukaryotic mRNA-Protein Complexes
Published on: August 18, 2018
Airway-applied mRNA vaccine needs tailored sequence design and high standard purification that removes devastating
Jingjing Zhang1, Chao Li1, Yuheng Liu2
1National Engineering Research Center of Immunological Products, Third Military Medical University, Chongqing 400038, China.
Abstract:
The development of mucosal mRNA vaccines is promising but extremely challenging. Major efforts have been focused on optimizing delivery systems, but it is still unknown whether the intrinsic quality of mRNA components significantly impacts the potency of airway-inoculated mRNA vaccines. Here, we systematically demonstrate that mucosal mRNA vaccine requires higher standards of purification and a tailor-designed sequence to fulfill its potency compared to its parenteral-route-inoculated counterpart. Double-stranded RNA (dsRNA) contaminants are prone to trigger the innate immune response in the airway that activates the mRNA degradation mechanism, thereby diminishing mRNA expression and subsequent antigen-specific immune responses. To address these challenges, we developed a strategy that combines optimized untranslated regions (UTRs) screened from endogenous genes of pulmonary cells with affinity chromatography-based purification, which effectively removed dsRNA contaminants. The optimized mRNA administered via the airway route not only demonstrated superior protein expression (30-fold increase) and reduced inflammation in the lung but also promoted robust adaptive immunity comprising significantly elevated systemic, cellular, and mucosal immune responses. This was in stark contrast to the intramuscular-injected counterpart that displayed less-pronounced benefits. Our findings offer new insights into the development of mucosal mRNA therapeutics from an overlooked but crucial perspective of optimizing mRNA components.
Insights
Optimizing messenger RNA (mRNA) vaccine components, specifically reducing double-stranded RNA (dsRNA) and tailoring sequences, significantly enhances mucosal vaccine potency and immune responses in the airways.
Area of Science:
- Biotechnology
- Vaccinology
- Immunology
Background:
- Mucosal messenger RNA (mRNA) vaccines are promising but face challenges.
- The impact of mRNA component quality on airway vaccine potency is unclear.
Purpose of the Study:
- To investigate the influence of mRNA purification and sequence design on mucosal vaccine efficacy.
- To develop strategies for improving airway-delivered mRNA vaccines.
Main Methods:
- Systematic evaluation of mRNA purification standards and sequence optimization.
- Screening of untranslated regions (UTRs) from pulmonary cells.
- Affinity chromatography for double-stranded RNA (dsRNA) contaminant removal.
Main Results:
- Higher purification and tailored sequences significantly improve mRNA vaccine potency for airway delivery.
- Optimized mRNA showed a 30-fold increase in protein expression and reduced lung inflammation.
- Enhanced systemic, cellular, and mucosal adaptive immunity was observed with airway administration.
Conclusions:
- mRNA component quality is crucial for effective mucosal vaccine development.
- Optimized mRNA components and purification strategies overcome challenges in airway delivery.
- This study provides critical insights for developing advanced mucosal mRNA therapeutics.
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