首页> 美国卫生研究院文献>Tissue Engineering. Part A >Beyond Burst Pressure: Initial Evaluation of the Natural History of the Biaxial Mechanical Properties of Tissue-Engineered Vascular Grafts in the Venous Circulation Using a Murine Model
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Beyond Burst Pressure: Initial Evaluation of the Natural History of the Biaxial Mechanical Properties of Tissue-Engineered Vascular Grafts in the Venous Circulation Using a Murine Model

机译:超越爆破压力:使用鼠模型对组织工程化血管移植物在静脉循环中双轴力学性质的自然历史进行初步评估

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摘要

We previously developed and validated a murine model for investigating neotissue formation in tissue-engineered vascular grafts (TEVGs). Herein, we present the first longitudinal assessment of both the microstructural composition and the mechanical properties of a TEVG through the process of neovessel formation (total scaffold degradation). We show that when (poly)glycolic acid-based biodegradable scaffolds were used as inferior vena cava interposition grafts in mice, the evolving neovessel developed biaxial properties that approached those of the native vein within 24 weeks of implantation. Further, we found that these changes in biaxial properties related temporally to extracellular matrix production and remodeling, including deposition of collagen (types I and III), elastic fibers (elastin and fibrillin-1), and glycosaminoglycans in addition to changes in matrix metalloproteinase (MMP)-2 and -9 activity. Improving our understanding of the mechanobiological principles underlying vascular neotissue formation in TEVGs holds great promise for improving the design of TEVGs and enabling us to continue the translation of this technology from the bench to the clinic.
机译:我们先前开发并验证了一种用于研究组织工程化血管移植物中新组织形成的鼠模型。本文中,我们通过新血管形成过程(总支架降解)对TEVG的微观结构组成和力学性能进行了首次纵向评估。我们显示,当基于(聚)乙醇酸的生物可降解支架用作小鼠下腔静脉置入移植物时,正在进化的新血管在植入后24周内发展出接近天然静脉的双轴性。此外,我们发现这些双轴特性的变化在时间上与细胞外基质的产生和重塑有关,除了基质金属蛋白酶的变化外,还包括胶原蛋白(I和III型),弹性纤维(弹性蛋白和原纤维蛋白-1)和糖胺聚糖的沉积( MMP)-2和-9活性。增进我们对TEVGs中血管新组织形成的力学生物学原理的理解,对于改善TEVGs的设计以及使我们能够继续将该技术从实验台转换到临床应用具有广阔的前景。

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