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首页> 外文期刊>Medical engineering & physics. >Fetal development, mechanobiology and optimal control processes can improve vascular tissue regeneration in bioreactors: An integrative review
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Fetal development, mechanobiology and optimal control processes can improve vascular tissue regeneration in bioreactors: An integrative review

机译:胎儿发育,力学生物学和最佳控制过程可改善生物反应器中的血管组织再生:综合综述

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摘要

Vascular tissue engineering aims to regenerate blood vessels to replace diseased arteries for cardiovascular patients. With the scaffold-based approach, cells are seeded on a scaffold showing specific properties and are expected to proliferate and self-organize into a functional vascular tissue. Bioreactors can significantly contribute to this objective by providing a suitable environment for the maturation of the tissue engineered blood vessel. It is recognized from the mechanotransduction principles that mechanical stimuli can influence the protein synthesis of the extra-cellular matrix thus leading to maturation and organization of the tissues. Up to date, no bioreactor is especially conceived to take advantage of the mechanobiology and optimize the construct maturation through an advanced control strategy. In this review, experimental strategies in the field of vascular tissue engineering are detailed, and a new approach inspired by fetal development, mechanobiology and optimal control paradigms is proposed. In this new approach, the culture conditions (i.e. flow, circumferential strain, pressure frequency, and others) are supposed to dynamically evolve to match the maturity of vascular constructs and maximize the efficiency of the regeneration process. Moreover, this approach allows the investigation of the mechanisms of growth, remodeling and mechanotransduction during the culture.
机译:血管组织工程旨在再生血管,以替代心血管患者的患病动脉。使用基于支架的方法,将细胞接种在具有特定特性的支架上,并有望增殖并自组织成功能性血管组织。生物反应器通过为组织工程化血管的成熟提供合适的环境,可以大大有助于实现这一目标。从机械转导原理认识到机械刺激可影响细胞外基质的蛋白质合成,从而导致组织的成熟和组织。迄今为止,还没有一种特别的生物反应器可以利用机械生物学特性并通过先进的控制策略来优化构建体的成熟度。在这篇综述中,详细介绍了血管组织工程领域的实验策略,并提出了一种受胎儿发育,力学生物学和最佳控制范式启发的新方法。在这种新方法中,培养条件(即流量,周向应变,压力频率等)应动态变化以匹配血管构造物的成熟度,并使再生过程的效率最大化。而且,这种方法允许研究培养过程中生长,重塑和机械转导的机制。

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