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Traction force microscopy of engineered cardiac tissues

机译:工程心脏组织的牵引力显微镜显微镜

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摘要

Cardiac tissue development and pathology have been shown to depend sensitively on microenvironmental mechanical factors, such as extracellular matrix stiffness, in both in vivo and in vitro systems. We present a novel quantitative approach to assess cardiac structure and function by extending the classical traction force microscopy technique to tissue-level preparations. Using this system, we investigated the relationship between contractile proficiency and metabolism in neonate rat ventricular myocytes (NRVM) cultured on gels with stiffness mimicking soft immature (1 kPa), normal healthy (13 kPa), and stiff diseased (90 kPa) cardiac microenvironments. We found that tissues engineered on the softest gels generated the least amount of stress and had the smallest work output. Conversely, cardiomyocytes in tissues engineered on healthy- and disease-mimicking gels generated significantly higher stresses, with the maximal contractile work measured in NRVM engineered on gels of normal stiffness. Interestingly, although tissues on soft gels exhibited poor stress generation and work production, their basal metabolic respiration rate was significantly more elevated than in other groups, suggesting a highly ineffective coupling between energy production and contractile work output. Our novel platform can thus be utilized to quantitatively assess the mechanotransduction pathways that initiate tissue-level structural and functional remodeling in response to substrate stiffness.
机译:已显示心脏组织发育和病理学敏感地依赖于体内和体外系统中的微环境机械因子,例如细胞外基质刚度。我们提出了一种新的定量方法来评估心脏结构和功能通过将古典牵引力显微镜技术扩展到组织级制剂。使用该系统,我们调查了在凝胶上培养的新生大鼠心室肌细胞(NRVM)之间的收缩熟练程度和新陈代谢之间的关系,其凝胶模拟柔软的未固化(1kPa),正常健康(13kPa)和硬质患病(90kPa)心脏微环境。我们发现在柔软的凝胶上设计的组织产生了最少的压力,并且有最小的工作输出。相反,在核心和疾病模仿凝胶上工程的组织中的心肌细胞产生显着提高的应力,在NRVM中测量的最大收缩工作,在正常刚度的凝胶上。有趣的是,尽管软凝胶的组织表现出较差的压力产生和工作生产,但它们的基础代谢呼吸速率明显高于其他组升高,这表明能源生产和收缩工程之间的高度无效耦合。因此,我们的新颖平台可用于定量评估机电调整途径,以响应于基板刚度引发组织级结构和功能重塑。

著录项

  • 来源
    《Journal of land use science》 |2018年第3期|共14页
  • 作者单位

    Harvard Univ Wyss Inst Biol Inspired Engn Dis Biophys Grp Cambridge MA 02138 USA;

    Harvard Univ Wyss Inst Biol Inspired Engn Dis Biophys Grp Cambridge MA 02138 USA;

    Harvard Univ Wyss Inst Biol Inspired Engn Dis Biophys Grp Cambridge MA 02138 USA;

    Harvard Univ Wyss Inst Biol Inspired Engn Dis Biophys Grp Cambridge MA 02138 USA;

    Harvard Univ Wyss Inst Biol Inspired Engn Dis Biophys Grp Cambridge MA 02138 USA;

    Harvard Univ Wyss Inst Biol Inspired Engn Dis Biophys Grp Cambridge MA 02138 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

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