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脂质纳米颗粒通过不同途径递送至小鼠体内的核苷修饰mRNA的表达动力学

Expression kinetics of nucleoside-modified mRNA delivered in lipid nanoparticles to mice by various routes.

作者信息

Pardi Norbert, Tuyishime Steven, Muramatsu Hiromi, Kariko Katalin, Mui Barbara L, Tam Ying K, Madden Thomas D, Hope Michael J, Weissman Drew

机构信息

Department of Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.

Acuitas Therapeutics, Vancouver, V6T 1Z3 BC, Canada.

出版信息

J Control Release. 2015 Nov 10;217:345-51. doi: 10.1016/j.jconrel.2015.08.007. Epub 2015 Aug 8.

Abstract

In recent years, in vitro transcribed messenger RNA (mRNA) has emerged as a potential therapeutic platform. To fulfill its promise, effective delivery of mRNA to specific cell types and tissues needs to be achieved. Lipid nanoparticles (LNPs) are efficient carriers for short-interfering RNAs and have entered clinical trials. However, little is known about the potential of LNPs to deliver mRNA. Here, we generated mRNA-LNPs by incorporating HPLC purified, 1-methylpseudouridine-containing mRNA comprising codon-optimized firefly luciferase into stable LNPs. Mice were injected with 0.005-0.250mg/kg doses of mRNA-LNPs by 6 different routes and high levels of protein translation could be measured using in vivo imaging. Subcutaneous, intramuscular and intradermal injection of the LNP-encapsulated mRNA translated locally at the site of injection for up to 10days. For several days, high levels of protein production could be achieved in the lung from the intratracheal administration of mRNA. Intravenous and intraperitoneal and to a lesser extent intramuscular and intratracheal deliveries led to trafficking of mRNA-LNPs systemically resulting in active translation of the mRNA in the liver for 1-4 days. Our results demonstrate that LNPs are appropriate carriers for mRNA in vivo and have the potential to become valuable tools for delivering mRNA encoding therapeutic proteins.

摘要

近年来,体外转录信使核糖核酸(mRNA)已成为一种潜在的治疗平台。为实现其前景,需要将mRNA有效地递送至特定细胞类型和组织。脂质纳米颗粒(LNP)是用于小干扰RNA的有效载体,并且已进入临床试验。然而,关于LNP递送mRNA的潜力知之甚少。在此,我们通过将经HPLC纯化的、包含密码子优化的萤火虫荧光素酶的含1-甲基假尿苷的mRNA掺入稳定的LNP中来生成mRNA-LNP。通过6种不同途径给小鼠注射0.005-0.250mg/kg剂量的mRNA-LNP,并且可以使用体内成像测量高水平的蛋白质翻译。皮下、肌肉内和皮内注射包裹LNP的mRNA在注射部位局部翻译长达10天。通过气管内给予mRNA,在数天内肺中可实现高水平的蛋白质产生。静脉内、腹腔内以及在较小程度上肌肉内和气管内递送导致mRNA-LNP全身转运,从而使mRNA在肝脏中进行1-4天的活性翻译。我们的结果表明,LNP是体内mRNA的合适载体,并且有潜力成为递送编码治疗性蛋白质的mRNA的有价值工具。

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