On the Influence of Fabrication Methods and Materials for mRNA‐LNP Production: From Size and Morphology to Internal Structure and mRNA Delivery Performance In Vitro and In Vivo

Author:

Bi Dongdong1,Wilhelmy Christoph2,Unthan Dennis1,Keil Isabell Sofia3,Zhao Bonan1,Kolb Bastian2,Koning Roman I.4,Graewert Melissa A.5,Wouters Bert1,Zwier Raphaël6,Bussmann Jeroen1,Hankemeier Thomas1,Diken Mustafa3,Haas Heinrich2,Langguth Peter2,Barz Matthias17ORCID,Zhang Heyang1

Affiliation:

1. Leiden Academic Centre for Drug Research (LACDR) Leiden University Einsteinweg 55 Leiden 2333 CC The Netherlands

2. Department of Biopharmaceutics and Pharmaceutical Technology Johannes Gutenberg University Mainz 55128 Mainz Germany

3. TRON‐Translational Oncology at the University Medical Center of Johannes Gutenberg University GmbH 55131 Mainz Germany

4. Electron Microscopy Facility Department of Cell and Chemical Biology Leiden University Medical Center Leiden 2300 RC The Netherlands

5. European Molecular Biology Laboratory (EMBL) Hamburg Outstation c/o DESY 22607 Hamburg Germany

6. Leiden Institute of Physics Research Leiden University Einsteinweg 55 Leiden 2333 CC The Netherlands

7. Department of Dermatology University Medical Center of the Johannes Gutenberg University Mainz Langenbeckstraße 1 55131 Mainz Germany

Abstract

AbstractLipid nanoparticle (LNP) remains the most advanced platform for messenger RNA (mRNA) delivery. To date, mRNA LNPs synthesis is mostly performed by mixing lipids and mRNA with microfluidics. In this study, a cost‐effective microfluidic setup for synthesizing mRNA LNPs is developed. It allows to fine‐tune the LNPs characteristics without compromising LNP properties. It is compared with a commercial device (NanoAssemblr) and ethanol injection and the influence of manufacturing conditions on the performance of mRNA LNPs is investigated. LNPs prepared by ethanol injection exhibit broader size distributions and more inhomogeneous internal structure (e.g., bleb‐like substructures), while other LNPs show uniform structure with dense cores. Small angel X‐ray scattering (SAXS) data indicate a tighter interaction between mRNA and lipids within LNPs synthesized by custom device, compared to LNPs produced by NanoAssemblr. Interestingly, the better transfection efficiency of polysarcosine (pSar)‐modified LNPs correlates with a higher surface roughness than that of PEGylated ones. The manufacturing approach, however, shows modest influence on mRNA expression in vivo. In summary, the home‐developed cost‐effective microfluidic device can synthesize LNPs and represents a potent alternative to NanoAssemblr. The preparation methods show notable effect on LNPs’ structure but a minor influence on mRNA delivery in vitro and in vivo.

Funder

China Scholarship Council

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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