Branched hydrophobic tails in lipid nanoparticles enhance mRNA delivery for cancer immunotherapy

信使核糖核酸 癌症免疫疗法 细胞内 免疫疗法 卵清蛋白 体外 化学 生物 细胞生物学 生物化学 免疫系统 免疫学 基因
作者
Yunfeng Yan,Xiaomin Liu,Longyu Wang,Chengfan Wu,Qi Shuai,Yanmei Zhang,Shuai Liu
出处
期刊:Biomaterials [Elsevier BV]
卷期号:301: 122279-122279 被引量:22
标识
DOI:10.1016/j.biomaterials.2023.122279
摘要

Efficient and safe delivery of vulnerable mRNA is a long-standing challenge for the broad application of the emerging mRNA-based therapeutics. Herein, a combinatorial library containing 119 novel lipids was constructed via sequential aza-Michael addition reactions of arylates and varying amines to tackle the ongoing challenge in mRNA delivery. Through in vitro screening of the lipid library on IGROV 1 cells, we identified several synthetic lipids with superior mRNA delivery efficacy. The delivery capability of these lipids was verified by the potent expression of luciferase in BALB/c mice upon intravenous administration of luciferase-encoding mRNA lipid nanoparticles (LNPs). Further investigations on the structure-activity relationship revealed that lipids with branched hydrophobic tails were better at delivering mRNA than those containing linear tails at the similar total number of carbons. In comparison to linear tails, the branched tails endowed LNPs with less inner hydrophobicity, fewer surface charges, and proper stability, which benefits the cellular uptake of LNPs and the intracellular trafficking of mRNA, thus improves the delivery efficacy of mRNA. The therapeutical potential of the lead LNPs was evaluated by delivering ovalbumin (OVA)-encoding mRNA to mice bearing B16-OVA melanoma tumors. The results demonstrated that the administration of OVA mRNA LNPs significantly activated CD8+ T cells in tumor microenvironment and substantially prohibited the growth of the aggressive B16-OVA tumors. The robust antitumor efficacy highlights the great potential of these LNPs in cancer immunotherapy.
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