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心脏特异性微小RNA海绵的体内纳米载体递送

In Vivo Nanovector Delivery of a Heart-specific MicroRNA-sponge.

作者信息

Kent Oliver A, Steenbergen Charles, Das Samarjit

机构信息

Princess Margaret Cancer Centre, University of Toronto.

Department of Pathology, Department of Cardiology, Johns Hopkins University.

出版信息

J Vis Exp. 2018 Jun 15(136):57845. doi: 10.3791/57845.

Abstract

MicroRNA (miRNA) is small non-coding RNA which inhibits post-transcriptional messenger RNA (mRNA) expression. Human diseases, such as cancer and cardiovascular disease, have been shown to activate tissue and/or cell-specific miRNA expression associated with disease progression. The inhibition of miRNA expression offers the potential for a therapeutic intervention. However, traditional approaches to inhibit miRNAs, employing antagomir oligonucleotides, affect specific miRNA functions upon global delivery. Herein, we present a protocol for the in vivo cardio-specific inhibition of the miR-181 family in a rat model. A miRNA-sponge construct is designed to include 10 repeated anti-miR-181 binding sequences. The cardio-specific α-MHC promoter is cloned into the pEGFP backbone to drive the cardio-specific miR-181 miRNA-sponge expression. To create a stable cell line expressing the miR-181-sponge, myoblast H9c2 cells are transfected with the α-MHC-EGFP-miR-181-sponge construct and sorted by fluorescence-activated cell sorting (FACs) into GFP positive H9c2 cells which are cultured with neomycin (G418). Following stable growth in neomycin, monoclonal cell populations are established by additional FACs and single cell cloning. The resulting myoblast H9c2-miR-181-sponge-GFP cells exhibit a loss of function of miR-181 family members as assessed through the increased expression of miR-181 target proteins and compared to H9c2 cells expressing a scramble non-functional sponge. In addition, we develop a nanovector for the systemic delivery of the miR-181-sponge construct by complexing positively charged liposomal nanoparticles and negatively charged miR-181-sponge plasmids. In vivo imaging of GFP reveals that multiple tail vein injections of a nanovector over a three-week period are able to promote a significant expression of the miR-181-sponge in a cardio-specific manner. Importantly, a loss of miR-181 function is observed in the heart tissue but not in the kidney or the liver. The miRNA-sponge is a powerful method to inhibit tissue-specific miRNA expression. Driving the miRNA-sponge expression from a tissue-specific promoter provides specificity for the miRNA inhibition, which can be confined to a targeted organ or tissue. Furthermore, combining nanovector and miRNA-sponge technologies permits an effective delivery and tissue-specific miRNA inhibition in vivo.

摘要

微小RNA(miRNA)是一种小的非编码RNA,可抑制转录后信使RNA(mRNA)的表达。人类疾病,如癌症和心血管疾病,已被证明会激活与疾病进展相关的组织和/或细胞特异性miRNA表达。抑制miRNA表达为治疗干预提供了可能性。然而,采用抗miR寡核苷酸抑制miRNA的传统方法在全身递送时会影响特定miRNA的功能。在此,我们提出了一种在大鼠模型中对miR-181家族进行体内心脏特异性抑制的方案。设计了一种miRNA海绵构建体,包含10个重复的抗miR-181结合序列。将心脏特异性α-肌球蛋白重链(α-MHC)启动子克隆到pEGFP骨架中,以驱动心脏特异性miR-181 miRNA海绵的表达。为了创建表达miR-181海绵的稳定细胞系,将成肌细胞H9c2用α-MHC-EGFP-miR-181海绵构建体转染,并通过荧光激活细胞分选(FACs)分选到GFP阳性的H9c2细胞中,这些细胞用新霉素(G418)培养。在新霉素中稳定生长后,通过额外的FACs和单细胞克隆建立单克隆细胞群体。与表达乱序无功能海绵的H9c2细胞相比,通过miR-181靶蛋白表达增加评估,所得的成肌细胞H9c2-miR-181海绵-GFP细胞表现出miR-181家族成员功能丧失。此外,我们通过将带正电荷的脂质体纳米颗粒与带负电荷的miR-181海绵质粒复合,开发了一种用于全身递送miR-181海绵构建体的纳米载体。GFP的体内成像显示,在三周内多次尾静脉注射纳米载体能够以心脏特异性方式促进miR-181海绵的显著表达。重要的是,在心脏组织中观察到miR-181功能丧失,但在肾脏或肝脏中未观察到。miRNA海绵是一种抑制组织特异性miRNA表达的强大方法。从组织特异性启动子驱动miRNA海绵表达为miRNA抑制提供了特异性,可局限于靶向器官或组织。此外,将纳米载体和miRNA海绵技术相结合可在体内实现有效递送和组织特异性miRNA抑制。

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