Related Experiment Video
Updated: Sep 29, 2026

Generation of Cationic Nanoliposomes for the Efficient Delivery of In Vitro Transcribed Messenger RNA
Published on: February 1, 2019
Increasing Lipid Nanoparticle mRNA Copy Number Improves Transfection Potency
Yao Zhang1,2,3, Jerry Leung1,3, Judy Cheng4
1Department of Biochemistry and Molecular Biology, University of British Columbia, Vancouver, British Columbia, Canada.
Abstract:
Lipid nanoparticles (LNPs) are the leading platform for delivery of RNA-based therapeutics. There is considerable interest in optimizing the transfection potency of these systems. Standard formulation protocols involve mixing lipids in ethanol with a buffer containing mRNA at pH 4, followed by dialysis against a pH 7.4 saline buffer to remove ethanol and raise the pH. The dialysis process results in fusion of mRNA-lipid complexes and small vesicles formed at pH 4, driven by two processes: Conversion of the ionizable lipid from the positively charged bilayer form to the neutral oil form and fusion stimulated by higher ionic strengths. Here we explored the consequences of a two-step dialysis process involving formulating at pH 4, 25 mM NaOAc, and then inducing fusion at pH 4 by dialyzing against a higher ionic strength buffer while maintaining the ethanol concentration at 25% (v/v). This was followed by dialysis against PBS to raise the pH. We show that the two-step protocol results in increased mRNA loading per LNP, a decreased proportion of "empties" as compared to the standard process, and improved transfection potencies in vitro and in vivo when compared to LNP mRNA formed from the traditional one-step buffer exchange process.
