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首页> 外文期刊>Journal of materials science >Shear stress and circumferential stretch by pulsatile flow direct vascular endothelial lineage commitment of mesenchymal stem cells in engineered blood vessels
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Shear stress and circumferential stretch by pulsatile flow direct vascular endothelial lineage commitment of mesenchymal stem cells in engineered blood vessels

机译:脉搏血流的剪切应力和周向拉伸直接作用于工程血管中的间充质干细胞的血管内皮谱系

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摘要

Understanding the response of mesenchymal stem cells (MSCs) in the dynamic biomechanical vascular environment is important for vascular regeneration. Native vessel biomechanical stimulation in vitro is thought to be the most important contributor to successful endothelial differentiation of MSCs. However, the appropriate biomechanical stimulation conditions for differentiating MSCs into ECs have not been fully investigated. To accomplish an in vivo-like loading environment, a loading system was designed to apply flow induced stress and induce hMSC differentiation in vascular cells. Culturing MSCs on tubular scaffolds under flow-induced shear stress (2.5 dyne/cm(2)) for 4 days results in increased mRNA levels of EC markers (vWF, CD31, VE-cadherin and E-selectin) after one day. Furthermore, we investigated the effects of 2.5 dyne/cm(2) shear stress followed by 3 % circumferential stretch for 3 days, and an additional 5 % circumferential stretch for 4 days on hMSC differentiation into ECs. EC marker protein levels showed a significant increase after applying 5 % stretch, while SMC markers were not present at levels sufficient for detection. Our results demonstrate that the expression of several hMSC EC markers cultured on double-layered tubular scaffolds were upregulated at the mRNA and protein levels with the application of fluid shear stress and cyclic circumferential stretch.
机译:了解动态生物力学血管环境中的间充质干细胞(MSCs)的反应对于血管再生很重要。体外的天然血管生物力学刺激被认为是成功分化MSCs的最重要的因素。然而,尚未充分研究用于将MSC分化为EC的合适的生物力学刺激条件。为了实现类似体内的加载环境,设计了一种加载系统,以施加流诱导的压力并诱导血管细胞中的hMSC分化。在流动诱导的切应力(2.5达因/厘米(2))下在管状支架上培养MSC 4天会导致一天后EC标记物(vWF,CD31,VE-钙粘着蛋白和E-选择素)的mRNA水平升高。此外,我们调查了2.5达因/厘米(2)的剪切应力,3%的周向拉伸3天和另外的5%的周向拉伸4天对hMSC分化为EC的影响。施加5%拉伸后,EC标记蛋白水平显着增加,而SMC标记蛋白的含量不足以进行检测。我们的结果表明,在双层管状支架上培养的几种hMSC EC标记物的表达在流体剪切应力和循环周向拉伸的作用下在mRNA和蛋白质水平上调。

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  • 来源
    《Journal of materials science》 |2016年第3期|60.1-60.11|共11页
  • 作者单位

    Inje Univ, Dept Biomed Engn, Rm 309,BLDG A,607 Obang Dong, Gimhae 621749, Gyeongnam, South Korea|Univ Penn, Dept Orthopaed Surg, McKay Orthopaed Res Lab, 36th St & Hamilton Walk,424 Stemmler Hall, Philadelphia, PA 19104 USA;

    Univ Penn, Dept Orthopaed Surg, McKay Orthopaed Res Lab, 36th St & Hamilton Walk,424 Stemmler Hall, Philadelphia, PA 19104 USA;

    Inje Univ, Dept Biomed Engn, Rm 309,BLDG A,607 Obang Dong, Gimhae 621749, Gyeongnam, South Korea;

    Inje Univ, Dept Biomed Engn, Rm 309,BLDG A,607 Obang Dong, Gimhae 621749, Gyeongnam, South Korea;

    Inje Univ, Dept Biomed Engn, Rm 309,BLDG A,607 Obang Dong, Gimhae 621749, Gyeongnam, South Korea;

    Inje Univ, Dept Biomed Engn, Rm 309,BLDG A,607 Obang Dong, Gimhae 621749, Gyeongnam, South Korea|Inje Univ, UHRC, Cardiovasc & Metab Dis Ctr, Inst Aged Life Redesign,Dept Hlth Sci & Technol, Gimhae 621749, Gyeongnam, South Korea;

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