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.

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.