Abstract
The emergence of mRNA-containing lipid nanoparticles (LNPs) during the COVID-19 pandemic has revolutionized vaccine technology and is now being explored for protein replacement therapies. This study aimed to test the hypothesis that LNP size, independent of lipid composition, critically influences their physicochemical and biological performance. To achieve this, we employed computational fluid dynamics (CFD) simulations to predict the mixing index within a microfluidic channel, identifying the flow rate conditions at which a 70% mixing index was reached. By tuning the flow rate accordingly, we generated LNPs across a controlled size range of 30-270 nm while maintaining identical lipid ratios. We systematically characterized these LNPs for zeta potential, pKa, generalized polarization, and hemolytic activity. Cellular studies in HeLa cells revealed that smaller LNPs exhibited higher uptake and transfection efficiency, which was quantitatively explained using a mathematical model of cellular uptake. In vivo studies further demonstrated that LNP size affected both the magnitude of mRNA expression and the biodistribution across organs following intravenous and intramuscular administration. Our findings demonstrate precise flow rate-induced size control of LNPs via microfluidics and reveal that smaller LNPs achieve superior gene expression in vitro and exhibit preferential transfection in vivo, underscoring the importance of size as a design parameter for mRNA delivery systems.
Keywords
Computational fluid dynamics
Gene delivery
Lipid nanoparticle
Microfluidics
Simulation
mRNA
MeSH 主题词
Humans
Nanoparticles/chemistry
Animals
RNA, Messenger/administration & dosage,genetics
HeLa Cells
Particle Size
Lipids/chemistry
Lab-On-A-Chip Devices
Transfection/methods
Tissue Distribution
Mice
SARS-CoV-2
Microfluidics
Hydrodynamics
COVID-19
Liposomes
化学物质
RNA, Messenger
Lipids
Lipid Nanoparticles
Liposomes
作者与单位
共 8 位作者,点击展开单位 / ORCID
Kim Bookun
Department of Medical Life Sciences and Department of Medical Sciences (Graduate School), College of Medicine, The Catholic University of Korea, Banpo-daero 222, Seocho-gu, 06591, Seoul, Republic of Korea (South Korea).
Park Cheol Hui
Department of Medical Life Sciences and Department of Medical Sciences (Graduate School), College of Medicine, The Catholic University of Korea, Banpo-daero 222, Seocho-gu, 06591, Seoul, Republic of Korea (South Korea).
Jung In-Young
School of Chemical Engineering, Sungkyunkwan University (SKKU), Suwon, 16419, Republic of Korea (South Korea).
Lee Yeeun
Department of Medical Life Sciences and Department of Medical Sciences (Graduate School), College of Medicine, The Catholic University of Korea, Banpo-daero 222, Seocho-gu, 06591, Seoul, Republic of Korea (South Korea).
Lim Seong Gi
Department of Medical Life Sciences and Department of Medical Sciences (Graduate School), College of Medicine, The Catholic University of Korea, Banpo-daero 222, Seocho-gu, 06591, Seoul, Republic of Korea (South Korea).
Lee Donghyun
Department of Medical Life Sciences and Department of Medical Sciences (Graduate School), College of Medicine, The Catholic University of Korea, Banpo-daero 222, Seocho-gu, 06591, Seoul, Republic of Korea (South Korea).
Kwon Seok Joon
School of Chemical Engineering, Sungkyunkwan University (SKKU), Suwon, 16419, Republic of Korea (South Korea). | SKKU Institute of Energy Science and Technology (SIEST), Sungkyunkwan University (SKKU), 16419, Suwon, Republic of Korea (South Korea).
Koo Heebeom
Department of Medical Life Sciences and Department of Medical Sciences (Graduate School), College of Medicine, The Catholic University of Korea, Banpo-daero 222, Seocho-gu, 06591, Seoul, Republic of Korea (South Korea).
[email protected].