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渐进性拉伸可促进三维干细胞衍生心肌的生长和成熟。

Progressive stretch enhances growth and maturation of 3D stem-cell-derived myocardium.

作者信息

Lu Kun, Seidel Thomas, Cao-Ehlker Xiaochun, Dorn Tatjana, Batcha Aarif Mohamed Nazeer, Schneider Christine Maria, Semmler Marie, Volk Tilmann, Moretti Alessandra, Dendorfer Andreas, Tomasi Roland

机构信息

Walter-Brendel-Centre of Experimental Medicine, University Hospital, Ludwig-Maximilians-University München, Munich, Germany.

Institute of Cellular and Molecular Physiology, Friedrich-Alexander University Erlangen-Nürnberg, Erlangen, Germany.

出版信息

Theranostics. 2021 Apr 15;11(13):6138-6153. doi: 10.7150/thno.54999. eCollection 2021.

Abstract

Bio-engineered myocardium has great potential to substitute damaged myocardium and for studies of myocardial physiology and disease, but structural and functional immaturity still implies limitations. Current protocols of engineered heart tissue (EHT) generation fall short of simulating the conditions of postnatal myocardial growth, which are characterized by tissue expansion and increased mechanical load. To investigate whether these two parameters can improve EHT maturation, we developed a new approach for the generation of cardiac tissues based on biomimetic stimulation under application of continuously increasing stretch. EHTs were generated by assembling cardiomyocytes derived from human induced pluripotent stem cells (hiPSC-CM) at high cell density in a low collagen hydrogel. Maturation and growth of the EHTs were induced in a custom-made biomimetic tissue culture system that provided continuous electrical stimulation and medium agitation along with progressive stretch at four different increments. Tissues were characterized after a three week conditioning period. The highest rate of stretch (S3 = 0.32 mm/day) increased force development by 5.1-fold compared to tissue with a fixed length, reaching contractility of 11.28 mN/mm². Importantly, intensely stretched EHTs developed physiological length-dependencies of active and passive forces (systolic/diastolic ratio = 9.47 ± 0.84), and a positive force-frequency relationship (1.25-fold contractility at 180 min). Functional markers of stretch-dependent maturation included enhanced and more rapid Ca transients, higher amplitude and upstroke velocity of action potentials, and pronounced adrenergic responses. Stretch conditioned hiPSC-CMs displayed structural improvements in cellular volume, linear alignment, and sarcomere length (2.19 ± 0.1 µm), and an overall upregulation of genes that are specifically expressed in adult cardiomyocytes. With the intention to simulate postnatal heart development, we have established techniques of tissue assembly and biomimetic culture that avoid tissue shrinkage and yield muscle fibers with contractility and compliance approaching the properties of adult myocardium. This study demonstrates that cultivation under progressive stretch is a feasible way to induce growth and maturation of stem cell-derived myocardium. The novel tissue-engineering approach fulfills important requirements of disease modelling and therapeutic tissue replacement.

摘要

生物工程心肌在替代受损心肌以及心肌生理学和疾病研究方面具有巨大潜力,但结构和功能的不成熟仍然意味着存在局限性。目前工程心脏组织(EHT)生成方案未能模拟出生后心肌生长的条件,其特征是组织扩张和机械负荷增加。为了研究这两个参数是否能改善EHT的成熟度,我们开发了一种基于仿生刺激的新方法来生成心脏组织,该方法在持续增加拉伸的情况下应用。EHT是通过将源自人诱导多能干细胞(hiPSC-CM)的心肌细胞以高细胞密度组装在低胶原蛋白水凝胶中生成的。EHT的成熟和生长在定制的仿生组织培养系统中诱导,该系统提供连续电刺激和培养基搅拌以及以四种不同增量进行的渐进拉伸。在三周的调节期后对组织进行表征。与固定长度的组织相比,最高拉伸速率(S3 = 0.32毫米/天)使力的发展增加了5.1倍,达到11.28毫牛顿/平方毫米的收缩性。重要的是,强烈拉伸的EHT产生了主动和被动力的生理长度依赖性(收缩期/舒张期比率 = 9.47 ± 0.84)以及正力 - 频率关系(在180分钟时收缩性增加1.25倍)。拉伸依赖性成熟的功能标志物包括增强且更快的钙瞬变、动作电位的更高幅度和上升速度以及明显的肾上腺素能反应。拉伸条件下的hiPSC-CM在细胞体积、线性排列和肌节长度(2.19 ± 0.1微米)方面显示出结构改善,以及在成年心肌细胞中特异性表达的基因的整体上调。为了模拟出生后心脏发育,我们建立了组织组装和仿生培养技术,避免了组织收缩,并产生了具有接近成年心肌特性的收缩性和顺应性的肌纤维。这项研究表明,在渐进拉伸下培养是诱导干细胞衍生心肌生长和成熟的可行方法。这种新型组织工程方法满足了疾病建模和治疗性组织替代的重要要求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cb1/8120210/5dd667f1fc9d/thnov11p6138g001.jpg

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