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首页> 外文期刊>Tissue engineering, Part B. Reviews >Advances in Application of Mechanical Stimuli in Bioreactors for Cartilage Tissue Engineering
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Advances in Application of Mechanical Stimuli in Bioreactors for Cartilage Tissue Engineering

机译:机械刺激在软骨组织工程生物反应器中的应用进展

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摘要

Articular cartilage (AC) is the weight-bearing tissue in diarthroses. It lacks the capacity for self-healing once there are injuries or diseases due to its avascularity. With the development of tissue engineering, repairing cartilage defects through transplantation of engineered cartilage that closely matches properties of native cartilage has become a new option for curing cartilage diseases. The main hurdle for clinical application of engineered cartilage is how to develop functional cartilage constructs for mass production in a credible way. Recently, impressive hyaline cartilage that may have the potential to provide capabilities for treating large cartilage lesions in the future has been produced in laboratories. The key to functional cartilage construction in vitro is to identify appropriate mechanical stimuli. First, they should ensure the function of metabolism because mechanical stimuli play the role of blood vessels in the metabolism of AC, for example, acquiring nutrition and removing wastes. Second, they should mimic the movement of synovial joints and produce phenotypically correct tissues to achieve the adaptive development between the micro-and macrostructure and function. In this article, we divide mechanical stimuli into three types according to forces transmitted by different media in bioreactors, namely forces transmitted through the liquid medium, solid medium, or other media, then we review and summarize the research status of bioreactors for cartilage tissue engineering (CTE), mainly focusing on the effects of diverse mechanical stimuli on engineered cartilage. Based on current researches, there are several motion patterns in knee joints; but compression, tension, shear, fluid shear, or hydrostatic pressure each only partially reflects the mechanical condition in vivo. In this study, we propose that rolling-sliding-compression load consists of various stimuli that will represent better mechanical environment in CTE. In addition, engineers often ignore the importance of biochemical factors to the growth and development of engineered cartilage. In our point of view, only by fully considering synergistic effects of mechanical and biochemical factors can we find appropriate culture conditions for functional cartilage constructs. Once again, rolling-sliding-compression load under appropriate biochemical conditions may be conductive to realize the adaptive development between the structure and function of engineered cartilage in vitro.
机译:关节软骨(AC)是腹期的负重组织。一旦由于其缺血性,它缺乏自我愈合的能力。随着组织工程的发展,通过移植的修复软骨缺陷,该软骨紧密匹配原生软骨的性质已成为固化软骨疾病的新选择。工程软骨临床应用的主要障碍是如何以可靠的方式开发批量生产的功能性软骨构建体。最近,令人印象深刻的透明软骨,可能有可能为未来治疗大型软骨病变的能力已经在实验室中产生。功能性软骨施工在体外的关键是鉴定适当的机械刺激。首先,它们应该确保代谢的功能,因为机械刺激在AC的代谢中发挥作用,例如,获得营养和去除废物。其次,它们应该模仿滑膜关节的运动并产生表型正确的组织,以实现微观和宏观结构和功能之间的适应性发展。在本文中,我们将机械刺激分为三种类型,根据生物反应器中的不同介质传递的力,即通过液体介质,固体培养基或其他培养基传递的力,然后我们审查并总结软骨组织工程的生物反应器的研究状态(CTE),主要关注各种机械刺激对工程软骨的影响。基于目前的研究,膝关节中有几种运动模式;但是压缩,张力,剪切,流体剪切或静水压力各自仅部分地反映体内的机械状况。在这项研究中,我们提出了滚动滑动压缩负载由各种刺激组成,这些刺激将在CTE中代表更好的机械环境。此外,工程师经常忽视生化因素对工程软骨增长和发展的重要性。在我们的观点来看,只有通过充分考虑机械和生化因素的协同作用,我们可以找到功能性软骨构建体的适当培养条件。再次,在适当的生化条件下的滚动滑动载荷可能是导电的,以实现在体外的工程软骨结构和功能之间的适应性发展。

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