Division of Cardiovascular Surgery and Toronto General Research Institute, University Health Network and Department of Surgery, Division of Cardiac Surgery, University of Toronto, Toronto, ON, Canada.
McEwen Centre for Regenerative Medicine, Toronto, ON, Canada.
Biomaterials. 2014 Mar;35(9):2798-808. doi: 10.1016/j.biomaterials.2013.12.052. Epub 2014 Jan 11.
The goal of cardiac tissue engineering is to restore function to the damaged myocardium with regenerative constructs. Human embryonic stem cell-derived cardiomyocytes (hESC-CMs) can produce viable, contractile, three-dimensional grafts that function in vivo. We sought to enhance the viability and functional maturation of cardiac tissue constructs by cyclical stretch. hESC-CMs seeded onto gelatin-based scaffolds underwent cyclical stretching. Histological analysis demonstrated a greater proportion of cardiac troponin T-expressing cells in stretched than non-stretched constructs, and flow sorting demonstrated a higher proportion of cardiomyocytes. Ultrastructural assessment showed that cells in stretched constructs had a more mature phenotype, characterized by greater cell elongation, increased gap junction expression, and better contractile elements. Real-time PCR revealed enhanced mRNA expression of genes associated with cardiac maturation as well as genes encoding cardiac ion channels. Calcium imaging confirmed that stretched constructs contracted more frequently, with shorter calcium cycle duration. Epicardial implantation of constructs onto ischemic rat hearts demonstrated the feasibility of this platform, with enhanced survival and engraftment of transplanted cells in the stretched constructs. This uniaxial stretching system may serve as a platform for the production of cardiac tissue-engineered constructs for translational applications.
心脏组织工程的目标是以再生构建物恢复受损心肌的功能。人胚胎干细胞衍生的心肌细胞(hESC-CMs)可以产生有活力、收缩的、三维的移植物,在体内发挥作用。我们试图通过周期性拉伸来提高心脏组织构建物的活力和功能成熟度。将 hESC-CMs 接种到基于明胶的支架上进行周期性拉伸。组织学分析表明,拉伸构建物中表达心肌肌钙蛋白 T 的细胞比例高于未拉伸的构建物,而流式细胞分选则显示出更高比例的心肌细胞。超微结构评估表明,拉伸构建物中的细胞具有更成熟的表型,其特征是细胞伸长增加、间隙连接表达增加以及收缩元件更好。实时 PCR 显示与心脏成熟相关的基因以及编码心脏离子通道的基因的 mRNA 表达增强。钙成像证实,拉伸构建物收缩更频繁,钙循环持续时间更短。将构建物的心外膜植入缺血大鼠心脏证明了这个平台的可行性,移植细胞在拉伸构建物中的存活率和植入率更高。这个单轴拉伸系统可以作为心脏组织工程构建物的生产平台,用于转化应用。