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间充质干细胞衍生的外泌体携带的MicroRNA-132促进心肌梗死中的血管生成。

MicroRNA-132, Delivered by Mesenchymal Stem Cell-Derived Exosomes, Promote Angiogenesis in Myocardial Infarction.

作者信息

Ma Teng, Chen Yueqiu, Chen Yihuan, Meng Qingyou, Sun Jiacheng, Shao Lianbo, Yu Yunsheng, Huang Haoyue, Hu Yanqiu, Yang Ziying, Yang Junjie, Shen Zhenya

机构信息

Department of Cardiovascular Surgery of the First Affiliated Hospital & Institute for Cardiovascular Science, Soochow University, Suzhou, China.

出版信息

Stem Cells Int. 2018 Sep 9;2018:3290372. doi: 10.1155/2018/3290372. eCollection 2018.

Abstract

BACKGROUND

To cure ischemic diseases, angiogenesis needs to be improved by various strategies in ischemic area. Considering that microRNA-132 (miR-132) regulates endothelial cell behavior during angiogenesis and the safe and efficacious delivery of microRNAs is rarely achieved, an ideal vehicle for miR-132 delivery could bring the promise for ischemic diseases. As a natural carrier of biological molecules, exosomes are more and more developed as an ideal vehicle for miRNA transfer. Meanwhile, mesenchymal stem cells could release large amounts of exosomes. Thus, this study aimed to investigate whether MSC-derived exosomes can be used for miR-132 delivery in the treatment of myocardial ischemia.

METHODS

MSC-derived exosomes were electroporated with miR-132 mimics and inhibitors. After electroporation, miR-132 exosomes were labelled with DiI and added to HUVECs. Internalization of DiI-labelled exosomes was examined by fluorescent microscopy. Expression levels of miR-132 in exosomes and HUVECs were quantified by real-time PCR. The mRNA levels of miR-132 target gene RASA1 in HUVECs were quantified by real-time PCR. Luciferase reporter assay was performed to examine the targeting relationship between miR-132 and RASA1. The effects of miR-132 exosomes on the angiogenic ability of endothelial cells were evaluated by tube formation assay. Matrigel plug assay and myocardial infarction model were used to determine whether miR-132 exosomes can promote angiogenesis .

RESULTS

miR-132 mimics were effectively electroporated and highly detected in MSC-derived exosomes. The expression level of miR-132 was high in HUVECs preincubated with miR-132 mimic-electroporated exosomes and low in HUVECs preincubated with miR-132 inhibitor-electroporated exosomes. The expression level of RASA1, miR-132 target gene, was reversely correlated with miR-132 expression in HUVECs pretreated with exosomes. Luciferase reporter assay further confirmed that RASA1 was a direct target of miR-132. Exosomes loaded with miR-132, as a vehicle for miRNA transfer, significantly increased tube formation of endothelial cells. Moreover, subcutaneous injection of HUVECs pretreated with miR-132 exosomes in nude mice significantly increased their angiogenesis capacity . In addition, transplantation of miR-132 exosomes in the ischemic hearts of mice markedly enhanced the neovascularization in the peri-infarct zone and preserved heart functions.

CONCLUSIONS

The findings suggest that the export of miR-132 via MSC-derived exosomes represents a novel strategy to enhance angiogenesis in ischemic diseases.

摘要

背景

为治愈缺血性疾病,需要通过各种策略改善缺血区域的血管生成。鉴于微小RNA-132(miR-132)在血管生成过程中调节内皮细胞行为,且很少能实现微小RNA的安全有效递送,一种理想的miR-132递送载体有望为缺血性疾病带来希望。作为生物分子的天然载体,外泌体越来越多地被开发为微小RNA转移的理想载体。同时,间充质干细胞可释放大量外泌体。因此,本研究旨在探讨间充质干细胞来源的外泌体是否可用于递送miR-132以治疗心肌缺血。

方法

用miR-132模拟物和抑制剂对间充质干细胞来源的外泌体进行电穿孔。电穿孔后,用DiI标记miR-132外泌体并添加到脐静脉内皮细胞(HUVECs)中。通过荧光显微镜检查DiI标记外泌体的内化情况。通过实时定量聚合酶链反应(PCR)定量外泌体和HUVECs中miR-132的表达水平。通过实时PCR定量HUVECs中miR-132靶基因RASA1的mRNA水平。进行荧光素酶报告基因检测以检查miR-132与RASA1之间的靶向关系。通过管腔形成试验评估miR-132外泌体对内皮细胞血管生成能力的影响。使用基质胶栓试验和心肌梗死模型来确定miR-132外泌体是否能促进血管生成。

结果

miR-132模拟物有效地进行了电穿孔,并在间充质干细胞来源的外泌体中高度检测到。用miR-132模拟物电穿孔的外泌体预孵育的HUVECs中miR-132表达水平高,而用miR-132抑制剂电穿孔的外泌体预孵育的HUVECs中miR-132表达水平低。在用外泌体预处理的HUVECs中,miR-132靶基因RASA1的表达水平与miR-132表达呈负相关。荧光素酶报告基因检测进一步证实RASA1是miR-132的直接靶标。作为微小RNA转移载体的负载miR-132的外泌体显著增加了内皮细胞的管腔形成。此外,在裸鼠中皮下注射用miR-132外泌体预处理的HUVECs显著提高了它们的血管生成能力。另外,将miR-132外泌体移植到小鼠缺血心脏中显著增强了梗死周边区域的新生血管形成并保留了心脏功能。

结论

这些发现表明,通过间充质干细胞来源的外泌体输出miR-132是增强缺血性疾病血管生成的一种新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/28a9/6151206/c8a580dfefa6/SCI2018-3290372.001.jpg

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