Decoding the Functional Roles of Individual Components in mRNA Lipid Nanoparticles.
basic_science · Level V
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- Record sourced from PubMed, PMID 42503852.
- Also identified by DOI 10.1021/acsnano.6c07039.
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Abstract
Lipid nanoparticles (LNPs) have represented a leading platform for mRNA delivery and therapeutics. While extensive studies have focused on optimizing ionizable lipids, the specific roles of helper lipids such as cholesterol, phospholipid, and polyethylene glycol lipid (PEG-lipid) remain relatively poorly understood. To elucidate the distinct contributions of individual lipid components, we reengineer LNP formulations by selectively removing each lipid component, especially helper lipids, to systematically analyze their effects on physicochemical properties, <i>in vivo</i> mRNA delivery, and inflammatory responses. Results reveal that ionizable lipid plays a critical role in mRNA delivery efficacy. Cholesterol is essential for efficient liver-targeted delivery but dispensable for extrahepatic delivery. Phospholipid is not directly associated with organ tropism, whereas phospholipid-free LNPs significantly alleviate inflammation. PEG-lipid influences particle size, with PEG-lipid-free LNPs exhibiting preferential spleen tropism. This study comprehensively demonstrates the important roles of each lipid component in determining the <i>in vivo</i> fate of LNPs, guiding the rational design of next-generation LNP-based mRNA delivery systems.