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Biomechanical Diversity Despite Mechanobiological Stability in Tissue Engineered Vascular Grafts Two Years Post-Implantation

机译:尽管植入后两年的组织工程化血管移植物具有机械生物学稳定性但生物力学多样性

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摘要

Recent advances in vascular tissue engineering have enabled a paradigm shift from ensuring short-term graft survival to focusing on long-term stability and growth potential. We present the first experimental-computational study of a tissue-engineered vascular graft (TEVG) effectively over the full lifespan of the recipient. We show that grafts implanted within the venous circulation of mice remained patent over 2 years without thrombus, stenosis, or aneurysmal dilatation. Moreover, the gross appearance and mechanical properties of the grafts evolved to be similar to the host vein within 24 weeks, with mean neovessel geometry and properties remaining unchanged thereafter despite a continued turnover of extracellular matrix. Biomechanical diversity manifested after 24 weeks, however, via two subsets of grafts despite all procedures being the same. Computational modeling and associated immunohistological analyses suggested that this diversity likely resulted from a differential ratio of collagen types I and III, with lower I to III ratios promoting grafts having a compliance similar to the native vein. We submit that TEVGs can exhibit the desired long-term mechanobiological stability; hence, we must now focus on evaluating growth potential and optimizing scaffold properties to achieve compliance matching throughout neovessel development.
机译:血管组织工程学的最新进展使范式从确保短期移植物存活变为关注长期稳定性和生长潜力。我们提出了在接受者的整个生命周期内有效进行的组织工程化血管移植(TEVG)的首次实验计算研究。我们显示,植入小鼠静脉循环内的移植物在2年内仍保持专利,没有血栓,狭窄或动脉瘤扩张。此外,移植物的总体外观和机械性能在24周内演变为与宿主静脉相似,尽管细胞外基质持续更新,但平均新血管的几何形状和性能在此后保持不变。尽管所有操作步骤均相同,但在24周后仍通过两个子集的移植物表现出生物力学多样性。计算模型和相关的免疫组织学分析表明,这种多样性可能是由于I型和III型胶原蛋白的比例不同而导致的,I / III型胶原蛋白的比例较低会促进移植物具有与天然静脉相似的顺应性。我们认为TEVGs可以表现出所需的长期机械生物学稳定性;因此,我们现在必须专注于评估生长潜力和优化支架特性,以在整个新血管发育过程中实现顺应性匹配。

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