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Updated: Sep 18, 2026

Formulating and Characterizing Lipid Nanoparticles for Gene Delivery using a Microfluidic Mixing Platform
Published on: February 25, 2021
Dilution mode acts as a critical process parameter that reprograms lipid nanoparticle assembly and in vivo mRNA
Siyuan Tang1, Lei Huang2, Wu Wang2
1Department of Liver Surgery, Renji Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai 200127, China; Shanghai Key Laboratory of Precision Gene Editing and Clinical Translation, 1630 Dongfang Road, Shanghai 200127, China; Sino-German Gene and Cell Therapy Center, 1630 Dongfang Road, Shanghai 200127, China.
Abstract:
Messenger RNA (mRNA)-loaded lipid nanoparticles (LNPs) are predominantly manufactured by microfluidic mixing, where extensive efforts have focused on optimizing upstream formulation and mixing parameters. In contrast, the influence of dilution methods on the final physicochemical properties and biological performance of mRNA/LNPs remains insufficiently understood. In this study, we systematically compared two representative downstream manufacturing methods, conventional off-line dilution (OD) and integrated in-line dilution (ID), using a design-of-experiments (DOE) strategy encompassing different flow rates (FR), flow-rate ratios (FRR), dilution ratios (DR). Across multiple formulations, ID consistently produced smaller nanoparticles with lower encapsulation efficiency and more negative surface charge than OD, whereas the dominant process parameter shifted from FRR under OD to DR under ID. These physicochemical differences were accompanied by distinct biological responses. ID-derived LNPs exhibited enhanced transfection in AML12 cells and increased hepatic mRNA expression following intramuscular administration, whereas OD-derived LNPs elicited stronger antigen-specific IFN-γ responses. Collectively, these findings suggest that dilution method continues to influence the maturation of mRNA/LNPs after microfluidic mixing and contributes to the establishment of their final physicochemical and biological characteristics.

