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Whole-Transcriptome Sequencing: A Powerful Tool for Vascular Tissue Engineering and Endothelial Mechanobiology

机译:全转录组测序:血管组织工程和内皮力学生物学的强大工具

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Among applicable high-throughput techniques in cardiovascular biology, whole-transcriptome sequencing is of particular use. By utilizing RNA that is isolated from virtually all cells and tissues, the entire transcriptome can be evaluated. In comparison with other high-throughput approaches, RNA sequencing is characterized by a relatively low-cost and large data output, which permits a comprehensive analysis of spatiotemporal variation in the gene expression profile. Both shear stress and cyclic strain exert hemodynamic force upon the arterial endothelium and are considered to be crucial determinants of endothelial physiology. Laminar blood flow results in a high shear stress that promotes atheroresistant endothelial phenotype, while a turbulent, oscillatory flow yields a pathologically low shear stress that disturbs endothelial homeostasis, making respective arterial segments prone to atherosclerosis. Severe atherosclerosis significantly impairs blood supply to the organs and frequently requires bypass surgery or an arterial replacement surgery that requires tissue-engineered vascular grafts. To provide insight into patterns of gene expression in endothelial cells in native or bioartificial arteries under different biomechanical conditions, this article discusses applications of whole-transcriptome sequencing in endothelial mechanobiology and vascular tissue engineering.
机译:在心血管生物学中适用的高通量技术中,全转录组测序特别有用。通过利用从几乎所有细胞和组织中分离出的RNA,可以评估整个转录组。与其他高通量方法相比,RNA测序的特点是成本相对较低且数据输出量大,从而可以全面分析基因表达谱中的时空变化。剪切应力和循环应变都在动脉内皮上施加血液动力,并且被认为是内皮生理的关键决定因素。层状血流导致高剪切应力,从而促进动脉粥样硬化内皮表型,而湍流,振荡流动产生病理学上较低的剪切应力,从而干扰内皮稳态,使各个动脉段易于发生动脉粥样硬化。严重的动脉粥样硬化严重损害了器官的血液供应,经常需要旁路手术或需要组织工程化血管移植的动脉置换手术。为了深入了解在不同生物力学条件下天然或生物人工动脉内皮细胞中基因表达的模式,本文讨论了全转录组测序技术在内皮力学生物学和血管组织工程中的应用。

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