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用于神经元基因沉默的载寡核苷酸脂质纳米颗粒中聚乙二醇化脂质的预测性高通量筛选。

Predictive high-throughput screening of PEGylated lipids in oligonucleotide-loaded lipid nanoparticles for neuronal gene silencing.

作者信息

Sarode Apoorva, Fan Yuchen, Byrnes Amy E, Hammel Michal, Hura Greg L, Fu Yige, Kou Ponien, Hu Chloe, Hinz Flora I, Roberts Jasmine, Koenig Stefan G, Nagapudi Karthik, Hoogenraad Casper C, Chen Tao, Leung Dennis, Yen Chun-Wan

机构信息

Small Molecule Pharmaceutical Sciences, Genentech Inc. 1 DNA Way South San Francisco CA-94080 USA

Department of Neuroscience, Genentech, Inc. South San Francisco CA 94080 USA.

出版信息

Nanoscale Adv. 2022 Feb 4;4(9):2107-2123. doi: 10.1039/d1na00712b. eCollection 2022 May 3.

Abstract

Lipid nanoparticles (LNPs) are gaining traction in the field of nucleic acid delivery following the success of two mRNA vaccines against COVID-19. As one of the constituent lipids on LNP surfaces, PEGylated lipids (PEG-lipids) play an important role in defining LNP physicochemical properties and biological interactions. Previous studies indicate that LNP performance is modulated by tuning PEG-lipid parameters including PEG size and architecture, carbon tail type and length, as well as the PEG-lipid molar ratio in LNPs. Owing to these numerous degrees of freedom, a high-throughput approach is necessary to fully understand LNP behavioral trends over a broad range of PEG-lipid variables. To this end, we report a low-volume, automated, high-throughput screening (HTS) workflow for the preparation, characterization, and assessment of LNPs loaded with a therapeutic antisense oligonucleotide (ASO). A library of 54 ASO-LNP formulations with distinct PEG-lipid compositions was prepared using a liquid handling robot and assessed for their physiochemical properties as well as gene silencing efficacy in murine cortical neurons. Our results show that the molar ratio of anionic PEG-lipid in LNPs regulates particle size and PEG-lipid carbon tail length controls ASO-LNP gene silencing activity. ASO-LNPs formulated using PEG-lipids with optimal carbon tail lengths achieved up to 5-fold lower mRNA expression in neurons as compared to naked ASO. Representative ASO-LNP formulations were further characterized using dose-response curves and small-angle X-ray scattering to understand structure-activity relationships. Identified hits were also tested for efficacy in primary murine microglia and were scaled-up using a microfluidic formulation technique, demonstrating a smooth translation of ASO-LNP properties and efficacy. The reported HTS workflow can be used to screen additional multivariate parameters of LNPs with significant time and material savings, therefore guiding the selection and scale-up of optimal formulations for nucleic acid delivery to a variety of cellular targets.

摘要

在两种抗新冠病毒mRNA疫苗取得成功之后,脂质纳米颗粒(LNPs)在核酸递送领域越来越受到关注。作为LNP表面的组成脂质之一,聚乙二醇化脂质(PEG-脂质)在定义LNP的物理化学性质和生物相互作用方面发挥着重要作用。先前的研究表明,通过调整PEG-脂质参数,包括PEG的大小和结构、碳尾类型和长度以及LNP中PEG-脂质的摩尔比,可以调节LNP的性能。由于存在这些众多的自由度,需要一种高通量方法来全面了解在广泛的PEG-脂质变量范围内LNP的行为趋势。为此,我们报告了一种低体积、自动化、高通量筛选(HTS)工作流程,用于制备、表征和评估负载治疗性反义寡核苷酸(ASO)的LNP。使用液体处理机器人制备了一个包含54种具有不同PEG-脂质组成的ASO-LNP制剂库,并评估了它们的物理化学性质以及在小鼠皮质神经元中的基因沉默效果。我们的结果表明,LNP中阴离子PEG-脂质的摩尔比调节粒径,而PEG-脂质碳尾长度控制ASO-LNP的基因沉默活性。与裸ASO相比,使用具有最佳碳尾长度的PEG-脂质配制的ASO-LNP在神经元中的mRNA表达降低了5倍。使用剂量反应曲线和小角X射线散射对代表性的ASO-LNP制剂进行了进一步表征,以了解构效关系。还测试了筛选出的有效制剂在原代小鼠小胶质细胞中的疗效,并使用微流体制备技术进行了放大,证明了ASO-LNP的性质和疗效能够顺利转化。所报告的HTS工作流程可用于筛选LNP的其他多变量参数,从而显著节省时间和材料,进而指导选择和放大用于向各种细胞靶点递送核酸的最佳制剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/05e8/9417559/bccdabcbad97/d1na00712b-f1.jpg

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