用于心血管疾病治疗的组织工程血管移植物:当前战略、挑战和未来展望

Kuntal Kumar Das, Ruchi Mishra Tiwari, Om Shankar, Pralay Maiti, Ashutosh Kumar Dubey
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引用次数: 0

摘要

心血管疾病是导致死亡的主要原因,其发生主要是由于血管阻塞或狭窄。冠状动脉和外周动脉旁路移植等外科手术经常需要血管移植物来进行长期血管再通。然而,使用胸内动脉和大隐静脉等自体血管,尤其是直径小于 6 毫米的血管,会因可用性有限、取用过程具有创伤性和适切性等问题而带来诸多顾虑。为了克服这些局限性,组织工程血管移植物(TEVGs)的开发正在不断推进。本综述全面介绍了一系列人工和天然生物聚合物的潜力及其制造技术、细胞来源和播种技术,以实现最先进的组织工程血管移植物。此外,这篇综述文章还概述了从各种体外和体内研究(包括人体临床试验)中获得的见解。文章强调了进一步探索关键领域的必要性,如最佳细胞来源、播种技术、机械性能、血液动力学、移植物整合、患者条件的影响、最佳爆破压力、足够的缝合强度、亲水性、生物降解性及相关因素。总之,本综述对 TEVG 的当前战略、挑战和未来前景提供了深入见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Tissue-engineered vascular grafts for cardiovascular disease management: Current strategies, challenges, and future perspectives

Tissue-engineered vascular grafts for cardiovascular disease management: Current strategies, challenges, and future perspectives

Cardiovascular diseases are the leading cause of mortality which primarily occurs due to the blood vessel obstruction or narrowing. Surgical procedures such as, coronary artery and peripheral artery bypass grafting frequently require vascular grafts for long-term revascularization. However, using autogenous vessels, such as the internal thoracic artery and saphenous vein, especially for vessels with diameters less than 6 mm, are associated with number of concerns due to limited availability, invasive retrieval procedures, and aptness. To overcome these limitations, the development of tissue-engineered vascular grafts (TEVGs) is in continuous thrust. This review comprehensively provides the potentiality of a range of artificial and naturally occurring biopolymers and their fabrication techniques, cell sources and seeding techniques to realize the state-of-the-art TEVGs. Moreover, this review article presents a synopsis of insights obtained from a variety of in vitro and in vivo studies, including human clinical trials. It underscores the need for further exploration into key areas such as optimal cell sources, seeding techniques, mechanical properties, hemodynamics, graft integration, the impact of patient conditions, optimum burst pressure, sufficient suture strength, hydrophilicity, biodegradability, and related factors. In summary, the review offers insights into the current strategies, challenges, and future perspectives of TEVG.

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