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Generation of Cationic Nanoliposomes for the Efficient Delivery of In Vitro Transcribed Messenger RNA
Published on: February 1, 2019
Optimization of ionizable lipids for aerosolizable mRNA lipid nanoparticles
Mae M Lewis1, Melissa R Soto2, Esther Y Maier3
1Department of Biomedical Engineering The University of Texas at Austin Austin Texas USA.
Abstract:
Although mRNA lipid nanoparticles (LNPs) are highly effective as vaccines, their efficacy for pulmonary delivery has not yet fully been established. A major barrier to this therapeutic goal is their instability during aerosolization for local delivery. This imparts a shear force that degrades the mRNA cargo and therefore reduces cell transfection. In addition to remaining stable upon aerosolization, mRNA LNPs must also possess the aerodynamic properties to achieve deposition in clinically relevant areas of the lungs. We addressed these challenges by formulating mRNA LNPs with SM-102, the clinically approved ionizable lipid in the Spikevax COVID-19 vaccine. Our lead candidate, B-1, had the highest mRNA expression in both a physiologically relevant air-liquid interface (ALI) human lung cell model and in healthy mice lungs upon aerosolization. Further, B-1 showed selective transfection in vivo of lung epithelial cells compared to immune cells and endothelial cells. These results show that the formulation can target therapeutically relevant cells in pulmonary diseases such as cystic fibrosis. Morphological studies of B-1 revealed differences in the surface structure compared to LNPs with lower transfection efficiency. Importantly, the formulation maintained critical aerodynamic properties in simulated human airways upon next generation impaction. Finally, structure-function analysis of SM-102 revealed that small changes in the number of carbons can improve upon mRNA delivery in ALI human lung cells. Overall, our study expands the application of SM-102 and its analogs to aerosolized pulmonary delivery and identifies a potent lead candidate for future therapeutically active mRNA therapies.
Insights
New mRNA lipid nanoparticles (LNPs) formulated with SM-102 show improved stability and targeted delivery for pulmonary applications. This breakthrough enhances potential mRNA therapies for lung diseases like cystic fibrosis.
Area of Science:
- Biotechnology
- Pulmonary Drug Delivery
- Nanomedicine
Background:
- Messenger RNA (mRNA) lipid nanoparticles (LNPs) are effective vaccines but face challenges in pulmonary delivery.
- Instability during aerosolization degrades mRNA and reduces cell transfection, hindering local lung delivery.
Purpose of the Study:
- To develop stable mRNA LNPs with suitable aerodynamic properties for effective pulmonary delivery.
- To identify a lead candidate for aerosolized mRNA therapies targeting lung epithelial cells.
Main Methods:
- Formulation of mRNA LNPs using SM-102, an ionizable lipid from the Spikevax COVID-19 vaccine.
- Evaluation of mRNA expression in an air-liquid interface (ALI) human lung cell model and in mice lungs post-aerosolization.
- Assessment of aerodynamic properties using next-generation impaction and structure-function analysis of SM-102.
Main Results:
- The lead candidate, B-1, demonstrated superior mRNA expression in ALI human lung cells and mouse lungs.
- B-1 exhibited selective transfection of lung epithelial cells in vivo.
- The formulation maintained critical aerodynamic properties for lung deposition.
- Structural modifications of SM-102 improved mRNA delivery in ALI human lung cells.
Conclusions:
- SM-102 and its analogs can be applied to aerosolized pulmonary delivery of mRNA.
- The study identified a potent lead candidate (B-1) for future mRNA-based pulmonary therapies.
- This research expands the therapeutic potential of mRNA beyond vaccination to treat lung diseases.

