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Controlling the Structural and Functional Anisotropy of Engineered Cardiac Tissues

机译:控制心脏工程组织的结构和功能各向异性

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摘要

The ability to control the degree of structural and functional anisotropy in 3D engineered cardiac tissues would have high utility for both in vitro studies of cardiac muscle physiology and pathology as well as potential tissue engineering therapies for myocardial infarction. Here, we applied a high aspect ratio soft lithography technique to generate network-like tissue patches seeded with neonatal rat cardiomyocytes. Fabricating longer elliptical pores within the patch networks increased the overall cardiomyocyte and extracellular matrix (ECM) alignment within the patch. Improved uniformity of cell and matrix alignment yielded an increase in anisotropy of action potential propagation and faster longitudinal conduction velocity (LCV). Cardiac tissue patches with a higher degree of cardiomyocyte alignment and electrical anisotropy also demonstrated greater isometric twitch forces. After two weeks of culture, specific measures of electrical and contractile function (LCV = 26.8 ± 0.8 cm/s, specific twitch force = 8.9 ± 1.1 mN/mm2 for the longest pores studied) were comparable to those of neonatal rat myocardium. We have thus described methodology for engineering of highly functional 3D engineered cardiac tissues with controllable degree of anisotropy.
机译:控制3D工程心脏组织中结构和功能各向异性程度的能力,对于心肌生理和病理学的体外研究以及心肌梗死的潜在组织工程治疗都将具有很高的实用性。在这里,我们应用了高纵横比软光刻技术来生成植入新生大鼠心肌细胞的网络状组织斑块。在贴剂网络中制造更长的椭圆孔会增加贴剂中整体心肌细胞和细胞外基质(ECM)的排列。改进的单元和矩阵排列的均匀性导致动作电位传播的各向异性增加,并且纵向传导速度(LCV)加快。具有较高程度的心肌细胞排列和电各向异性的心脏组织斑块也显示出更大的等轴测抽搐力。培养两周后,电学和收缩功能的特定测量值(LCV = 26.8±0.8 cm / s,比抽动力= 8.9±1.1 mN / mm 2 对于最长的毛孔)与新生大鼠心肌的那些。因此,我们已经描述了具有可控制的各向异性度的高功能3D工程心脏组织工程方法。

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    W Bian; C P Jackman; N Bursac;

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  • 年(卷),期 -1(6),2
  • 年度 -1
  • 页码 024109
  • 总页数 17
  • 原文格式 PDF
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