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将人心肌工程化,使其电机械成熟为成人样表型。

Engineering of human cardiac muscle electromechanically matured to an adult-like phenotype.

机构信息

Department of Biomedical Engineering, Columbia University, New York, NY, USA.

Life and Health Sciences Research Institute (ICVS), School of Medicine, University of Minho, Braga, Portugal.

出版信息

Nat Protoc. 2019 Oct;14(10):2781-2817. doi: 10.1038/s41596-019-0189-8. Epub 2019 Sep 6.

Abstract

The application of tissue-engineering approaches to human induced pluripotent stem (hiPS) cells enables the development of physiologically relevant human tissue models for in vitro studies of development, regeneration, and disease. However, the immature phenotype of hiPS-derived cardiomyocytes (hiPS-CMs) limits their utility. We have developed a protocol to generate engineered cardiac tissues from hiPS cells and electromechanically mature them toward an adult-like phenotype. This protocol also provides optimized methods for analyzing these tissues' functionality, ultrastructure, and cellular properties. The approach relies on biological adaptation of cultured tissues subjected to biomimetic cues, applied at an increasing intensity, to drive accelerated maturation. hiPS cells are differentiated into cardiomyocytes and used immediately after the first contractions are observed, when they still have developmental plasticity. This starting cell population is combined with human dermal fibroblasts, encapsulated in a fibrin hydrogel and allowed to compact under passive tension in a custom-designed bioreactor. After 7 d of tissue formation, the engineered tissues are matured for an additional 21 d by increasingly intense electromechanical stimulation. Tissue properties can be evaluated by measuring contractile function, responsiveness to electrical stimuli, ultrastructure properties (sarcomere length, mitochondrial density, networks of transverse tubules), force-frequency and force-length relationships, calcium handling, and responses to β-adrenergic agonists. Cell properties can be evaluated by monitoring gene/protein expression, oxidative metabolism, and electrophysiology. The protocol takes 4 weeks and requires experience in advanced cell culture and machining methods for bioreactor fabrication. We anticipate that this protocol will improve modeling of cardiac diseases and testing of drugs.

摘要

应用组织工程方法对人类诱导多能干细胞(hiPS)进行处理,使我们能够开发出与生理相关的人类组织模型,用于体外研究发育、再生和疾病。然而,hiPS 细胞分化而来的心肌细胞(hiPS-CMs)表现出不成熟的表型,限制了其应用。我们已经开发了一种从 hiPS 细胞生成工程化心脏组织并使其朝着成人样表型进行电机械成熟的方案。该方案还提供了优化的方法来分析这些组织的功能、超微结构和细胞特性。该方法依赖于培养组织对仿生信号的生物适应性,这些信号的强度逐渐增加,以促进加速成熟。hiPS 细胞被分化为心肌细胞,并在观察到第一次收缩后立即使用,此时它们仍然具有发育可塑性。这个起始细胞群体与人类真皮成纤维细胞结合,包裹在纤维蛋白水凝胶中,并在定制设计的生物反应器中在被动张力下允许组织紧凑。在组织形成 7 天后,通过逐渐增强的电机械刺激使工程化组织进一步成熟 21 天。可以通过测量收缩功能、对电刺激的反应性、超微结构特性(肌节长度、线粒体密度、横管网络)、力-频率和力-长度关系、钙处理以及对β-肾上腺素能激动剂的反应来评估组织特性。可以通过监测基因/蛋白表达、氧化代谢和电生理学来评估细胞特性。该方案需要 4 周的时间,并且需要具备高级细胞培养和生物反应器制造方面的加工方法经验。我们预计,该方案将改善心脏疾病的建模和药物测试。

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