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不饱和三烷基可电离脂质是用于治疗和疫苗应用的多功能脂质纳米颗粒成分。

Unsaturated, Trialkyl Ionizable Lipids are Versatile Lipid-Nanoparticle Components for Therapeutic and Vaccine Applications.

作者信息

Lam Kieu, Leung Ada, Martin Alan, Wood Mark, Schreiner Petra, Palmer Lorne, Daly Owen, Zhao Wenchen, McClintock Kevin, Heyes James

机构信息

Genevant Sciences Corporation, 887 Great Northern Way, Vancouver, BC, V5T 4T5, Canada.

出版信息

Adv Mater. 2023 Apr;35(15):e2209624. doi: 10.1002/adma.202209624. Epub 2023 Mar 5.

DOI:10.1002/adma.202209624
PMID:36680477
Abstract

Lipid nanoparticles (LNPs) have proven a successful platform for the delivery of nucleic acid (NA)-based therapeutics and vaccines, with the ionizable lipid component playing a key role in modulating potency and tolerability. Here, a library of 16 novel ionizable lipids is screened hypothesizing that short, branched trialkyl hydrophobic domains can improve LNP fusogenicity or endosomal escape, and potency. LNPs formulated with the top-performing trialkyl lipid (Lipid 10) encapsulating transthyretin siRNA elicit significantly greater gene silencing and are better tolerated than those with the benchmark Onpattro lipid DLin-MC3-DMA. Lipid 10 also demonstrates superior liver delivery of mRNA when compared to other literature ionizable lipids, is well tolerated, and successfully repeat-doses in nonhuman primates. In a prime-boost hemagglutinin rodent vaccine model, intramuscular administration of Lipid-10 LNP elicits comparable or better antibody titers to the SM-102 and ALC-0315 lipid compositions used in the U.S. Food and Drug Administration approved mRNA COVID vaccines. These data suggest that Lipid 10 is a particularly versatile ionizable lipid, well-suited for both systemic therapeutic and intramuscular vaccine applications and able to successfully deliver diverse NA payloads.

摘要

脂质纳米颗粒(LNPs)已被证明是一种成功的平台,可用于递送基于核酸(NA)的治疗药物和疫苗,其中可电离脂质成分在调节效力和耐受性方面起着关键作用。在此,筛选了一个包含16种新型可电离脂质的文库,假设短支链三烷基疏水结构域可以提高LNP的融合性或内体逃逸能力以及效力。用封装转甲状腺素蛋白siRNA的表现最佳的三烷基脂质(脂质10)配制的LNPs引发的基因沉默作用明显更强,并且比使用基准Onpattro脂质DLin-MC3-DMA的LNPs耐受性更好。与其他文献中的可电离脂质相比,脂质10在肝脏中递送mRNA的能力也更优越,耐受性良好,并且可以在非人类灵长类动物中成功进行重复给药。在初免-加强血凝素啮齿动物疫苗模型中,肌肉注射脂质10 LNP引发的抗体滴度与美国食品药品监督管理局批准的mRNA COVID疫苗中使用的SM-102和ALC-0315脂质组合物相当或更高。这些数据表明,脂质10是一种特别通用的可电离脂质,非常适合全身治疗和肌肉注射疫苗应用,并且能够成功递送多种NA载荷。

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