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Beating heart on a chip: a novel microfluidic platform to generate functional 3D cardiac microtissues

机译:在芯片上跳动心脏:产生功能性3D心脏微组织的新型微流体平台

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In the past few years, microfluidic-based technology has developed microscale models recapitulating key physical and biological cues typical of the native myocardium. However, the application of controlled physiological uniaxial cyclic strains on a defined three-dimension cellular environment is not yet possible. Two-dimension mechanical stimulation was particularly investigated, neglecting the complex three-dimensional cell-cell and cell-matrix interactions. For this purpose, we developed a heart-on-a-chip platform, which recapitulates the physiologic mechanical environment experienced by cells in the native myocardium. The device includes an array of hanging posts to confine cell-laden gels, and a pneumatic actuation system to induce homogeneous uniaxial cyclic strains to the 3D cell constructs during culture. The device was used to generate mature and highly functional micro-engineered cardiac tissues (mu ECTs), from both neonatal rat and human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CM), strongly suggesting the robustness of our engineered cardiac micro-niche. Our results demonstrated that the cyclic strain was effectively highly uniaxial and uniformly transferred to cells in culture. As compared to control, stimulated mu ECTs showed superior cardiac differentiation, as well as electrical and mechanical coupling, owing to a remarkable increase in junction complexes. Mechanical stimulation also promoted early spontaneous synchronous beating and better contractile capability in response to electric pacing. Pacing analyses of hiPSC-CM constructs upon controlled administration of isoprenaline showed further promising applications of our platform in drug discovery, delivery and toxicology fields. The proposed heart-on-a-chip device represents a relevant step forward in the field, providing a standard functional three-dimensional cardiac model to possibly predict signs of hypertrophic changes in cardiac phenotype by mechanical and biochemical costimulation.
机译:在过去的几年中,基于微流体的技术已经开发出微尺度模型,概括了天然心肌典型的关键物理和生物学线索。但是,尚不可能在限定的三维细胞环境中应用受控的生理单轴循环菌株。专门研究了二维机械刺激,忽略了复杂的三维细胞-细胞和细胞-基质相互作用。为此,我们开发了一个“芯片上心脏”平台,该平台概述了天然心肌细胞所经历的生理机械环境。该设备包括一系列悬挂柱以限制充满细胞的凝胶,以及一个气动驱动系统,用于在培养过程中向3D细胞构建体诱导均匀的单轴循环应变。该设备用于从新生大鼠和人类诱导的多能干细胞衍生的心肌细胞(hiPSC-CM)生成成熟且功能强大的微工程心脏组织(mu ECTs),强烈暗示了我们的工程心脏微环境的坚固性。我们的结果表明,循环应变可以有效地高度单轴化,并均匀地转移到培养细胞中。与对照组相比,受刺激的mu ECTs表现出优异的心脏分化能力,以及电和机械耦合,这是由于结复合物的显着增加所致。机械刺激还促进了早期自发同步搏动和响应电起搏更好的收缩能力。在对异丙肾上腺素进行受控管理后对hiPSC-CM构建体进行的起步分析显示,我们的平台在药物发现,递送和毒理学领域的进一步有希望的应用。拟议的芯片上心脏设备代表了该领域的重要进展,它提供了一种标准的功能性三维心脏模型,可以通过机械和生化共刺激来预测心脏表型肥大变化的迹象。

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