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人诱导多能干细胞来源的间充质干细胞分泌的外泌体通过促进小鼠血管生成减轻肢体缺血。

Exosomes secreted by human-induced pluripotent stem cell-derived mesenchymal stem cells attenuate limb ischemia by promoting angiogenesis in mice.

作者信息

Hu Guo-wen, Li Qing, Niu Xin, Hu Bin, Liu Juan, Zhou Shu-min, Guo Shang-chun, Lang Hai-li, Zhang Chang-qing, Wang Yang, Deng Zhi-feng

机构信息

Department of Neurosurgery, Shanghai Jiaotong University Affiliated Sixth People's Hospital, 600 Yishan Road, Shanghai, 200233, China.

Jiangxi Medical College of Nanchang University, 461 BaYi Avenue, Nanchang, 330006, China.

出版信息

Stem Cell Res Ther. 2015 Apr 10;6(1):10. doi: 10.1186/scrt546.

Abstract

INTRODUCTION

'Patient-specific' induced pluripotent stem cells (iPSCs) are attractive because they can generate abundant cells without the risk of immune rejection for cell therapy. Studies have shown that iPSC-derived mesenchymal stem cells (iMSCs) possess powerful proliferation, differentiation, and therapeutic effects. Recently, most studies indicate that stem cells exert their therapeutic effect mainly through a paracrine mechanism other than transdifferentiation, and exosomes have emerged as an important paracrine factor for stem cells to reprogram injured cells. The objective of this study was to evaluate whether exosomes derived from iMSCs (iMSCs-Exo) possess the ability to attenuate limb ischemia and promote angiogenesis after transplantation into limbs of mice with femoral artery excision.

METHODS

Human iPSCs (iPS-S-01, C1P33, and PCKDSF001C1) were used to differentiate into iMSCs in a modified one-step method. iMSCs were characterized by flow cytometry and multipotent differentiation potential analysis. Ultrafiltration combined with a purification method was used to isolate iMSCs-Exo, and transmission electron microscopy and Western blotting were used to identify iMSCs-Exo. After establishment of mouse hind-limb ischemia with excision of femoral artery and iMSCs-Exo injection, blood perfusion was monitored at days 0, 7, 14, and 21; microvessel density in ischemic muscle was also analyzed. In vitro migration, proliferation, and tube formation experiments were used to analyze the ability of pro-angiogenesis in iMSCs-Exo, and quantitative reverse-transcriptase polymerase chain reaction and enzyme-linked immunosorbent assay were used to identify expression levels of angiogenesis-related molecules in human umbilical vein endothelial cells (HUVECs) after being cultured with iMSCs-Exo.

RESULTS

iPSCs were efficiently induced into iMSC- with MSC-positive and -negative surface antigens and osteogenesis, adipogenesis, and chondrogenesis differentiation potential. iMSCs-Exo with a diameter of 57 ± 11 nm and expressed CD63, CD81, and CD9. Intramuscular injection of iMSCs-Exo markedly enhanced microvessel density and blood perfusion in mouse ischemic limbs, consistent with an attenuation of ischemic injury. In addition, iMSCs-Exo could activate angiogenesis-related molecule expression and promote HUVEC migration, proliferation, and tube formation.

CONCLUSION

Implanted iMSCs-Exo was able to protect limbs from ischemic injury via the promotion of angiogenesis, which indicated that iMSCs-Exo may be a novel therapeutic approach in the treatment of ischemic diseases.

摘要

引言

“患者特异性”诱导多能干细胞(iPSC)具有吸引力,因为它们可以产生大量细胞,且用于细胞治疗时不存在免疫排斥风险。研究表明,iPSC衍生的间充质干细胞(iMSC)具有强大的增殖、分化和治疗作用。最近,大多数研究表明,干细胞主要通过旁分泌机制而非转分化发挥其治疗作用,外泌体已成为干细胞重编程受损细胞的重要旁分泌因子。本研究的目的是评估iMSC衍生的外泌体(iMSC-Exo)在移植到股动脉切除的小鼠肢体后是否具有减轻肢体缺血和促进血管生成的能力。

方法

使用人iPSC(iPS-S-01、C1P33和PCKDSF001C1)通过改良的一步法分化为iMSC。通过流式细胞术和多能分化潜能分析对iMSC进行表征。采用超滤结合纯化方法分离iMSC-Exo,并通过透射电子显微镜和蛋白质免疫印迹法鉴定iMSC-Exo。在建立股动脉切除的小鼠后肢缺血模型并注射iMSC-Exo后,于第0、7、14和21天监测血液灌注;还分析了缺血肌肉中的微血管密度。体外迁移、增殖和管形成实验用于分析iMSC-Exo的促血管生成能力,定量逆转录聚合酶链反应和酶联免疫吸附测定用于鉴定与人脐静脉内皮细胞(HUVEC)共培养后血管生成相关分子的表达水平。

结果

iPSC被有效诱导为iMSC,其具有MSC阳性和阴性表面抗原以及成骨、成脂和成软骨分化潜能。iMSC-Exo直径为57±11nm,表达CD63、CD81和CD9。肌肉注射iMSC-Exo显著提高了小鼠缺血肢体的微血管密度和血液灌注,与缺血损伤减轻一致。此外,iMSC-Exo可激活血管生成相关分子表达并促进HUVEC迁移、增殖和管形成。

结论

植入的iMSC-Exo能够通过促进血管生成保护肢体免受缺血损伤这表明iMSC-Exo可能是治疗缺血性疾病的一种新的治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a4e/4533800/37ad2e7c816a/13287_2014_465_Fig1_HTML.jpg

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