赋形剂
化学
纳米囊
纳米技术
纳米颗粒
药物输送
材料科学
色谱法
有机化学
作者
Allen Yujie Jiang,Jacob Witten,Idris O. Raji,Feyisayo Eweje,Corina MacIsaac,Sabrina Meng,Favour A. Oladimeji,Yizong Hu,Rajith S. Manan,Róbert Langer,Daniel G. Anderson
标识
DOI:10.1038/s41565-023-01548-3
摘要
Inhaled delivery of mRNA has the potential to treat a wide variety of diseases. However, nebulized mRNA lipid nanoparticles (LNPs) face several unique challenges including stability during nebulization and penetration through both cellular and extracellular barriers. Here we develop a combinatorial approach addressing these barriers. First, we observe that LNP formulations can be stabilized to resist nebulization-induced aggregation by altering the nebulization buffer to increase the LNP charge during nebulization, and by the addition of a branched polymeric excipient. Next, we synthesize a combinatorial library of ionizable, degradable lipids using reductive amination, and evaluate their delivery potential using fully differentiated air–liquid interface cultured primary lung epithelial cells. The final combination of ionizable lipid, charge-stabilized formulation and stability-enhancing excipient yields a significant improvement in lung mRNA delivery over current state-of-the-art LNPs and polymeric nanoparticles. Nebulized mRNA delivery has broad therapeutic potential but has proven challenging. Here, the authors report on a modified lipid nanoparticle with improved conditions to allow nebulization and demonstrate its application for delivering mRNA to the lungs.
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