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Updated: Jun 10, 2025

Testing the In Vitro and In Vivo Efficiency of mRNA-Lipid Nanoparticles Formulated by Microfluidic Mixing
Published on: January 20, 2023
Comprehensive Optimization of a Freeze-Drying Process Achieving Enhanced Long-Term Stability and In Vivo Performance
Teresa Alejo1, Alfonso Toro-Córdova1, Laura Fernández1
1CerTest Biotec S.L., 50840 San Mateo de Gállego, Spain.
Abstract:
The success of mRNA vaccines against SARS-CoV-2 has prompted interest in mRNA-based pharmaceuticals due to their rapid production, adaptability, and safety. Despite these advantages, the inherent instability of mRNA and its rapid degradation in vivo underscores the need for an encapsulation system for the administration and delivery of RNA-based therapeutics. Lipid nanoparticles (LNPs) have proven the most robust and safest option for in vivo applications. However, the mid- to long-term storage of mRNA-LNPs still requires sub-zero temperatures along the entire chain of supply, highlighting the need to develop alternatives to improve mRNA vaccine stability under non-freezing conditions to facilitate logistics and distribution. Lyophilization presents itself as an effective alternative to prolong the shelf life of mRNA vaccines under refrigeration conditions, although a complex optimization of the process parameters is needed to maintain the integrity of the mRNA-LNPs. Recent studies have demonstrated the feasibility of freeze-drying LNPs, showing that lyophilized mRNA-LNPs retain activity and stability. However, long-term functional data remain limited. Herein, we focus on obtaining an optimized lyophilizable mRNA-LNP formulation through the careful selection of an optimal buffer and cryoprotectant and by tuning freeze-drying parameters. The results demonstrate that our optimized lyophilization process maintains LNP characteristics and functionality for over a year at refrigerated temperatures, offering a viable solution to the logistical hurdles of mRNA vaccine distribution.
Insights
Lyophilization of messenger RNA (mRNA) lipid nanoparticles (LNPs) offers a stable, non-frozen storage solution. This optimized process maintains mRNA-LNP integrity and function for over a year at refrigerated temperatures, improving vaccine distribution.
Area of Science:
- Biotechnology
- Pharmaceutical Sciences
- Vaccinology
Background:
- Messenger RNA (mRNA) therapeutics, including vaccines, show promise due to rapid production and adaptability.
- Lipid nanoparticles (LNPs) are effective delivery vehicles for mRNA, but require sub-zero storage, complicating logistics.
- Improved stability of mRNA-LNPs under non-freezing conditions is crucial for widespread distribution.
Purpose of the Study:
- To develop an optimized lyophilization process for mRNA-LNP formulations.
- To enhance the long-term stability of mRNA-LNPs under refrigerated conditions.
- To address logistical challenges associated with mRNA vaccine storage and distribution.
Main Methods:
- Careful selection of optimal buffer and cryoprotectant components.
- Tuning of freeze-drying (lyophilization) process parameters.
- Evaluation of LNP characteristics and mRNA functionality post-lyophilization and storage.
Main Results:
- An optimized lyophilization process was established for mRNA-LNPs.
- Lyophilized mRNA-LNPs maintained their structural characteristics and biological activity.
- The optimized formulation demonstrated stability for over one year at refrigerated temperatures.
Conclusions:
- Lyophilization is a viable strategy to enhance mRNA-LNP stability at refrigerated temperatures.
- This approach overcomes the cold-chain limitations of current mRNA vaccines.
- Optimized lyophilized mRNA-LNPs offer a promising solution for improved vaccine logistics and accessibility.

