Amplification of Protein Expression by Self-Amplifying mRNA Delivered in Lipid Nanoparticles Containing a β-Aminoester Ionizable Lipid Correlates with Reduced Innate Immune Activation.

IF 15.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
ACS Nano Pub Date : 2024-10-15 Epub Date: 2024-10-01 DOI:10.1021/acsnano.4c09677
Emily De Lombaerde, Xiaole Cui, Yong Chen, Zifu Zhong, Julie Deckers, Giulia Mencarelli, Lisa Opsomer, Haixiu Wang, Jamie De Baere, Stefan Lienenklaus, Bart N Lambrecht, Niek N Sanders, Bruno G De Geest
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Abstract

Self-amplifying mRNA (saRNA) is witnessing increased interest as a platform technology for protein replacement therapy, gene editing, immunotherapy, and vaccination. saRNA can replicate itself inside cells, leading to a higher and more sustained production of the desired protein at a lower dose. Controlling innate immune activation, however, is crucial to suppress unwanted inflammation upon delivery and self-replication of RNA in vivo. In this study, we report on a class of β-aminoester lipids (βAELs) synthesized through the Michael addition of an acrylate to diethanolamine, followed by esterification with fatty acids. These lipids possessed one or two ionizable amines, depending on the use of nonionic or amine-containing acrylates. We utilized βAELs for encapsulating saRNA in lipid nanoparticles (LNPs) and evaluated their transfection efficiency in vitro and in vivo in mice, while comparing them to LNPs containing ALC-0315 as an ionizable lipid reference. Among the tested lipids, OC7, which comprises two unsaturated oleoyl alkyl chains and an ionizable azepanyl motif, emerged as a βAEL with low cytotoxicity and immunogenicity relative to ALC-0315. Interestingly, saRNA delivered via the OC7 LNP exhibited a distinct in vivo transfection profile. Initially, intramuscular injection of OC7 LNP resulted in low protein expression shortly after administration, followed by a gradual increase over a period of up to 7 days. This pattern is indicative of successful self-amplification of saRNA. In contrast, saRNA delivered via ALC-0315 LNP demonstrated high protein translation initially, which gradually declined over time and lacked the amplification seen with OC7 LNP. We observed that, in contrast to saRNA OC7 LNP, saRNA ALC-0315 LNP induced potent innate immune activation by triggering cytoplasmic RIG-I-like receptors (RLRs), likely due to the highly efficient endosomal membrane rupturing properties of ALC-0315 LNP. Consequently, the massive production of type I interferons quickly hindered the amplification of the saRNA. Our findings highlight the critical role of the choice of ionizable lipid for saRNA formulation in LNPs, particularly in shaping the qualitative profile of protein expression. For applications where minimizing inflammation is desired, the use of ionizable lipids, such as the βAEL reported in this study, that elicit a low type I interferon response in saRNA LNP is crucial.

Abstract Image

自扩增 mRNA 在含有 β 氨基酸酯可离子化脂质的纳米脂质颗粒中传递时对蛋白质表达的扩增与先天性免疫激活的降低有关。
作为蛋白质替代疗法、基因编辑、免疫疗法和疫苗接种的平台技术,自扩增 mRNA(saRNA)正受到越来越多的关注。saRNA 可以在细胞内自我复制,从而以较低的剂量产生更多更持久的所需蛋白质。然而,控制先天性免疫激活对于抑制体内 RNA 传递和自我复制时不必要的炎症至关重要。在这项研究中,我们报告了一类通过丙烯酸酯与二乙醇胺的迈克尔加成,然后与脂肪酸酯化而合成的β-氨基酯脂质(βAELs)。根据使用非离子丙烯酸酯或含胺丙烯酸酯的不同,这些脂类具有一个或两个可离子化的胺。我们利用 βAELs 将 saRNA 包封在脂质纳米颗粒(LNPs)中,并评估了它们在体外和小鼠体内的转染效率,同时将它们与含有 ALC-0315 作为可电离脂质参照物的 LNPs 进行了比较。在测试的脂质中,由两条不饱和油酰基烷基链和一个可电离的氮杂环庚基基团组成的 OC7 与 ALC-0315 相比,具有较低的细胞毒性和免疫原性。有趣的是,通过 OC7 LNP 递送的 saRNA 表现出独特的体内转染特征。最初,肌肉注射 OC7 LNP 后不久,蛋白表达量较低,随后在长达 7 天的时间内蛋白表达量逐渐增加。这种模式表明 saRNA 成功实现了自我扩增。与此相反,通过 ALC-0315 LNP 递送的 saRNA 最初表现出较高的蛋白翻译量,但随着时间的推移逐渐下降,缺乏 OC7 LNP 的扩增效果。我们观察到,与 saRNA OC7 LNP 不同,saRNA ALC-0315 LNP 通过触发细胞质 RIG-I 样受体(RLRs)诱导有效的先天性免疫激活,这可能是由于 ALC-0315 LNP 具有高效的内体膜破裂特性。因此,I型干扰素的大量产生迅速阻碍了saRNA的扩增。我们的研究结果突显了在 LNPs 中配制 saRNA 时选择可电离脂质的关键作用,尤其是在塑造蛋白质表达的质量曲线方面。对于需要尽量减少炎症的应用,使用可电离脂质(如本研究中报道的βAEL)至关重要,因为它能在saRNA LNP中引起较低的Ⅰ型干扰素反应。
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来源期刊
ACS Nano
ACS Nano 工程技术-材料科学:综合
CiteScore
26.00
自引率
4.10%
发文量
1627
审稿时长
1.7 months
期刊介绍: ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.
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