Biodegradable Lipids Enabling Rapidly Eliminated Lipid Nanoparticles for Systemic Delivery of RNAi Therapeutics

生物相容性 耐受性 化学 RNA干扰 体内 纳米技术 药理学 生物技术 医学 生物化学 生物 核糖核酸 材料科学 不利影响 基因 有机化学
作者
Martin A. Maier,Muthusamy Jayaraman,Shigeo Matsuda,Ju Liu,Scott Barros,William Querbes,Ying K. Tam,Steven M. Ansell,Varun Kumar,June Qin,Xuemei Zhang,Qianfan Wang,Sue Panesar,Renta Hutabarat,Mary Carioto,Julia Hettinger,Kandasamy Pachamuthu,David Butler,Kallanthottathil G. Rajeev,Bo Pang,Klaus Charissé,Kevin Fitzgerald,Barbara L. Mui,Xinyao Du,Pieter R. Cullis,Thomas D. Madden,Michael J. Hope,Muthiah Manoharan,Akin Akinc
出处
期刊:Molecular Therapy [Elsevier]
卷期号:21 (8): 1570-1578 被引量:449
标识
DOI:10.1038/mt.2013.124
摘要

In recent years, RNA interference (RNAi) therapeutics, most notably with lipid nanoparticle-based delivery systems, have advanced into human clinical trials. The results from these early clinical trials suggest that lipid nanoparticles (LNPs), and the novel ionizable lipids that comprise them, will be important materials in this emerging field of medicine. A persistent theme in the use of materials for biomedical applications has been the incorporation of biodegradability as a means to improve biocompatibility and/or to facilitate elimination. Therefore, the aim of this work was to further advance the LNP platform through the development of novel, next-generation lipids that combine the excellent potency of the most advanced lipids currently available with biodegradable functionality. As a representative example of this novel class of biodegradable lipids, the lipid evaluated in this work displays rapid elimination from plasma and tissues, substantially improved tolerability in preclinical studies, while maintaining in vivo potency on par with that of the most advanced lipids currently available. In recent years, RNA interference (RNAi) therapeutics, most notably with lipid nanoparticle-based delivery systems, have advanced into human clinical trials. The results from these early clinical trials suggest that lipid nanoparticles (LNPs), and the novel ionizable lipids that comprise them, will be important materials in this emerging field of medicine. A persistent theme in the use of materials for biomedical applications has been the incorporation of biodegradability as a means to improve biocompatibility and/or to facilitate elimination. Therefore, the aim of this work was to further advance the LNP platform through the development of novel, next-generation lipids that combine the excellent potency of the most advanced lipids currently available with biodegradable functionality. As a representative example of this novel class of biodegradable lipids, the lipid evaluated in this work displays rapid elimination from plasma and tissues, substantially improved tolerability in preclinical studies, while maintaining in vivo potency on par with that of the most advanced lipids currently available.
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