软生物反应器系统:迈向工程化 MSK 软组织的必经之路?

Nicole Dvorak, Zekun Liu, P. Mouthuy
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摘要

组织工程(TE)的一个主要目标是制造体外功能移植物,以替代病人体内受损的组织或器官。组织工程学使用生物反应器,这是一种可控环境,可对在生物材料中生长的相关细胞施加物理和生物化学反应。对于肌腱、韧带和软骨等软肌肉骨骼(MSK)组织而言,目前已经明确的是,可以将外加机械应力纳入这些生物反应器系统,通过激活机械传导途径来支持组织的生长和成熟。然而,与生理学上的机械应力相比,实验室中应用的机械应力往往过于简单,这可能是导致工程化 MSK 移植物在临床上进展缓慢的一个因素。近年来,越来越多的研究侧重于应用复杂的加载条件,对组织构建体施加不同类型和方向的应力,以更好地模拟体内细胞环境。这些研究强调了改进传统刚性生物反应器(通常仅限于单轴加载)的必要性,以应用与生理相关的多轴应力并阐明其对组织成熟的影响。为了满足这一需求,软性生物反应器应运而生。它们采用了一个或多个软部件,例如可随驱动扭转和弯曲的柔性软室、可随构建体弯曲的软顺应致动器以及可在原位记录测量结果的软传感器。本综述探讨了传统刚性生物反应器的类型及其缺点,并重点介绍了 MSK TE 中软性生物反应器的最新进展。文章讨论了此类系统面临的挑战和未来的应用,提请人们关注这些平台令人振奋的前景及其帮助开发功能性软组织工程移植物的能力。
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Soft bioreactor systems: a necessary step toward engineered MSK soft tissue?
A key objective of tissue engineering (TE) is to produce in vitro funcional grafts that can replace damaged tissues or organs in patients. TE uses bioreactors, which are controlled environments, allowing the application of physical and biochemical cues to relevant cells growing in biomaterials. For soft musculoskeletal (MSK) tissues such as tendons, ligaments and cartilage, it is now well established that applied mechanical stresses can be incorporated into those bioreactor systems to support tissue growth and maturation via activation of mechanotransduction pathways. However, mechanical stresses applied in the laboratory are often oversimplified compared to those found physiologically and may be a factor in the slow progression of engineered MSK grafts towards the clinic. In recent years, an increasing number of studies have focused on the application of complex loading conditions, applying stresses of different types and direction on tissue constructs, in order to better mimic the cellular environment experienced in vivo. Such studies have highlighted the need to improve upon traditional rigid bioreactors, which are often limited to uniaxial loading, to apply physiologically relevant multiaxial stresses and elucidate their influence on tissue maturation. To address this need, soft bioreactors have emerged. They employ one or more soft components, such as flexible soft chambers that can twist and bend with actuation, soft compliant actuators that can bend with the construct, and soft sensors which record measurements in situ. This review examines types of traditional rigid bioreactors and their shortcomings, and highlights recent advances of soft bioreactors in MSK TE. Challenges and future applications of such systems are discussed, drawing attention to the exciting prospect of these platforms and their ability to aid development of functional soft tissue engineered grafts.
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