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基于聚乙烯亚胺的高分子复合物的脂质化增加了生物工程 RNAi 试剂的血清稳定性,并在体内提供了更一致的肿瘤基因敲低效果。

Lipidation of polyethylenimine-based polyplex increases serum stability of bioengineered RNAi agents and offers more consistent tumoral gene knockdown in vivo.

机构信息

Department of Biochemistry & Molecular Medicine, UC Davis School of Medicine, Sacramento, CA 95817, USA.

Department of Biochemistry & Molecular Medicine, UC Davis School of Medicine, Sacramento, CA 95817, USA; College of Pharmaceutical Sciences, Zhejiang University, Hangzhou, Zhejiang 310058, China.

出版信息

Int J Pharm. 2018 Aug 25;547(1-2):537-544. doi: 10.1016/j.ijpharm.2018.06.026. Epub 2018 Jun 9.

DOI:10.1016/j.ijpharm.2018.06.026
PMID:29894758
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6388695/
Abstract

Recently we have established a novel approach to produce bioengineered noncoding RNA agents (BERAs) in living cells that carry target RNAi molecules (e.g., siRNA and miRNA) and thus act as "prodrugs". Using GFP-siRNA-loaded BERA (BERA/GFP-siRNA) as a model molecule, this study was to define the in vitro and in vivo knockdown efficiency of BERAs delivered by liposome-polyethylenimine nanocomplex (lipopolyplex or LPP). Compared to in vivo-jetPEI® (IVJ-PEI) and polyplex formulations, LPP offered greater protection of BERA/GFP-siRNA against degradation by serum RNases. Particle sizes and zeta potentials of LPP nanocomplex remained stable over 28 days when stored at 4 °C. Furthermore, comparable levels of BERA/GFP-siRNA were delivered by LPP and IVJ-PEI to luciferase/GFP-expressing human SK-Hep1-Luc-GFP or A549-Luc-GFP cells, which were selectively processed into target GFP-siRNA and subsequently knocked down GFP mRNA and protein levels. In addition, LPP-carried BERA/GFP-siRNA was successfully delivered into xenograft tumors and offered more consistent knockdown of tumoral GFP mRNA level in an orthotopic hepatocellular carcinoma (HCC) SK-Hep1-Luc-GFP xenograft mouse model, while IVJ-PEI formulation showed larger variation. These findings demonstrated that lipidation of polyplexes improved serum stability of biologic RNAi molecules, which was efficiently delivered to orthotopic HCC tissues to knock down target gene expression.

摘要

最近,我们建立了一种在活细胞中产生携带靶向 RNAi 分子(如 siRNA 和 miRNA)的生物工程非编码 RNA 制剂(BERAs)的新方法,这些分子可作为“前药”。本研究以 GFP-siRNA 负载的 BERA(BERA/GFP-siRNA)为模型分子,旨在定义通过脂质体-聚乙烯亚胺纳米复合物(lipopolyplex 或 LPP)递送的 BERAs 的体外和体内 RNAi 敲低效率。与体内喷射聚乙烯亚胺(IVJ-PEI)和多聚物制剂相比,LPP 提供了对 BERA/GFP-siRNA 更有效的保护,使其免受血清 RNase 的降解。当在 4°C 下储存时,LPP 纳米复合物的粒径和 zeta 电位在 28 天内保持稳定。此外,LPP 和 IVJ-PEI 都能将相当水平的 BERA/GFP-siRNA 递送至表达荧光素酶/GFP 的人 SK-Hep1-Luc-GFP 或 A549-Luc-GFP 细胞,这些细胞被选择性加工成靶 GFP-siRNA,随后敲低 GFP mRNA 和蛋白水平。此外,LPP 携带的 BERA/GFP-siRNA 成功递送至异种移植肿瘤,并在原位肝癌(HCC)SK-Hep1-Luc-GFP 异种移植小鼠模型中更一致地敲低肿瘤 GFP mRNA 水平,而 IVJ-PEI 制剂则显示出更大的变化。这些发现表明,多聚物的脂质化提高了生物 RNAi 分子的血清稳定性,这些分子可有效地递送至原位 HCC 组织以敲低靶基因表达。

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