Tallawi Marwa, Rai Ranjana, Boccaccini Aldo R, Aifantis Katerina E
1 Department of Materials Science and Engineering, Institute of Biomaterials, University of Erlangen-Nuremberg , Erlangen, Germany .
Tissue Eng Part B Rev. 2015 Feb;21(1):157-65. doi: 10.1089/ten.TEB.2014.0383. Epub 2014 Nov 12.
Cardiac tissue engineering constructs are a promising therapeutic treatment for myocardial infarction, which is one of the leading causes of death. In order to further advance the development and regeneration of engineered cardiac tissues using biomaterial platforms, it is important to have a complete overview of the effects that substrates have on cardiomyocyte (CM) morphology and function. This article summarizes recent studies that investigate the effect of mechanical cues on the CM differentiation, maturation, and growth. In these studies, CMs derived from embryos, neonates, and mesenchymal stem cells were seeded on different substrates of various elastic modulus. Measuring the contractile function by force production, work output, and calcium handling, it was seen that cell behavior on substrates was optimized when the substrate stiffness mimicked that of the native tissue. The contractile function reflected changes in the sarcomeric protein confirmation and organization that promoted the contractile ability. The analysis of the literature also revealed that, in addition to matrix stiffness, mechanical stimulation, such as stretching the substrate during cell seeding, also played an important role during cell maturation and tissue development.
心脏组织工程构建物是治疗心肌梗死的一种有前景的治疗方法,心肌梗死是主要的死亡原因之一。为了利用生物材料平台进一步推进工程化心脏组织的发育和再生,全面了解基质对心肌细胞(CM)形态和功能的影响非常重要。本文总结了最近研究机械信号对CM分化、成熟和生长影响的研究。在这些研究中,将源自胚胎、新生儿和间充质干细胞的CM接种在具有不同弹性模量的不同基质上。通过力产生、功输出和钙处理来测量收缩功能,结果发现当基质刚度模拟天然组织的刚度时,细胞在基质上的行为得到优化。收缩功能反映了肌节蛋白构象和组织的变化,这些变化促进了收缩能力。文献分析还表明,除了基质刚度外,机械刺激,如在细胞接种过程中拉伸基质,在细胞成熟和组织发育过程中也起着重要作用。