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在间充质干细胞中生成一氧化氮信号通路可促进内皮谱系的定向分化。

Generation of a nitric oxide signaling pathway in mesenchymal stem cells promotes endothelial lineage commitment.

机构信息

O'Brien Institute Department, St. Vincent's Institute of Medical Research, Fitzroy, Victoria, Australia.

School of Biomedical Sciences, Charles Sturt University, Wagga Wagga, New South Wales, Australia.

出版信息

J Cell Physiol. 2019 Nov;234(11):20392-20407. doi: 10.1002/jcp.28640. Epub 2019 Apr 17.

DOI:10.1002/jcp.28640
PMID:30997675
Abstract

Enhancing differentiation of mesenchymal stem cells (MSCs) to endothelial cells may improve their ability to vascularize tissue and promote wound healing. This study describes a novel role for nitric oxide (NO) in reprogramming MSCs towards an endothelial lineage and highlights the role of Wnt signaling and epigenetic modification by NO. Rat MSCs were transduced with lentiviral vectors expressing endothelial nitric oxide synthase (pLV-eNOS) and a mutated caveolin gene (pLV-CAV-1 ) to enhance NO generation resulting in increased in vitro capillary tubule formation and endothelial marker gene expression. An exogenous source of NO could also stimulate CD31 expression in MSCs. NO was associated with an arterial-specific endothelial gene expression profile of Notch1, Dll4, and Hey2 and significantly reduced expression of venous markers. Wnt signaling associated with NO was evident through increased gene expression of Wnt3a and β-catenin protein, and expression of the endothelial marker Pecam-1 could be significantly reduced by treatment with the Wnt signaling inhibitor Dkk-1. The role of NO as an epigenetic modifier was evident with reduced gene expression of the methyltransferase, DNMT1, and bisulfite sequencing of the endothelial Flt1 promoter region in NO-producing MSCs showed significant demethylation compared to control cells. Finally, subcutaneous implantation of NO-producing MSCs seeded in a biomaterial scaffold (NovoSorb®) resulted in survival of transplanted cells and the formation of blood vessels. In summary, this study describes, NO as a potent endothelial programming factor which acts as an epigenetic modifier in MSCs and may provide a novel platform for vascular regenerative therapy.

摘要

增强间充质干细胞 (MSCs) 向内皮细胞的分化能力可能会提高其血管化组织和促进伤口愈合的能力。本研究描述了一氧化氮 (NO) 在重编程 MSCs 向内皮谱系方向分化中的新作用,并强调了 Wnt 信号和 NO 引起的表观遗传修饰的作用。通过慢病毒载体转导大鼠 MSCs,表达内皮型一氧化氮合酶 (pLV-eNOS) 和突变的 caveolin 基因 (pLV-CAV-1) 以增强 NO 的产生,从而导致体外毛细血管管腔形成和内皮标记基因表达增加。NO 的外源性来源也可以刺激 MSCs 中 CD31 的表达。NO 与 Notch1、Dll4 和 Hey2 的动脉特异性内皮基因表达谱相关,并显著降低静脉标记物的表达。与 NO 相关的 Wnt 信号通过增加 Wnt3a 和 β-连环蛋白蛋白的基因表达而显现,并且内皮标记物 Pecam-1 的表达可以通过用 Wnt 信号抑制剂 Dkk-1 处理而显著降低。NO 作为表观遗传修饰剂的作用通过减少甲基转移酶 DNMT1 的基因表达和 NO 产生的 MSCs 中内皮 Flt1 启动子区域的亚硫酸氢盐测序显现,与对照细胞相比,NO 产生的 MSCs 中的亚硫酸氢盐测序显示出明显的去甲基化。最后,将在生物材料支架 (NovoSorb®) 中接种产生 NO 的 MSCs 进行皮下植入,导致移植细胞的存活和血管的形成。总之,本研究描述了 NO 作为一种有效的内皮编程因子,作为 MSCs 中的一种表观遗传修饰剂,可能为血管再生治疗提供新的平台。

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