Department of Biomedical Engineering, Yale University, New Haven, CT, 06511, USA,
Cell Mol Life Sci. 2014 Jun;71(11):2103-18. doi: 10.1007/s00018-013-1546-3. Epub 2014 Jan 8.
This review will focus on two elements that are essential for functional arterial regeneration in vitro: the mechanical environment and the bioreactors used for tissue growth. The importance of the mechanical environment to embryological development, vascular functionality, and vascular graft regeneration will be discussed. Bioreactors generate mechanical stimuli to simulate biomechanical environment of arterial system. This system has been used to reconstruct arterial grafts with appropriate mechanical strength for implantation by controlling the chemical and mechanical environments in which the grafts are grown. Bioreactors are powerful tools to study the effect of mechanical stimuli on extracellular matrix architecture and mechanical properties of engineered vessels. Hence, biomimetic systems enable us to optimize chemo-biomechanical culture conditions to regenerate engineered vessels with physiological properties similar to those of native arteries. In addition, this article reviews various bioreactors designed especially to apply axial loading to engineered arteries. This review will also introduce and examine different approaches and techniques that have been used to engineer biologically based vascular grafts, including collagen-based grafts, fibrin-gel grafts, cell sheet engineering, biodegradable polymers, and decellularization of native vessels.
机械环境和用于组织生长的生物反应器。将讨论机械环境对胚胎发育、血管功能和血管移植物再生的重要性。生物反应器产生机械刺激,以模拟动脉系统的生物力学环境。通过控制移植物生长的化学和机械环境,该系统已被用于构建具有适当机械强度以用于植入的动脉移植物。生物反应器是研究机械刺激对工程血管外基质结构和机械性能影响的强大工具。因此,仿生系统使我们能够优化化学-机械培养条件,以再生具有类似于天然动脉生理特性的工程血管。此外,本文还回顾了专门设计用于向工程化动脉施加轴向负载的各种生物反应器。本文还将介绍和研究用于构建基于生物的血管移植物的不同方法和技术,包括基于胶原蛋白的移植物、纤维蛋白凝胶移植物、细胞片工程、可生物降解聚合物和天然血管的去细胞化。