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Novel anisotropic engineered cardiac tissues: studies of electrical propagation

机译:新型各向异性工程心脏组织:电传播的研究

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摘要

The goal of this study was to engineer cardiac tissue constructs with uniformly anisotropic architecture, and to evaluate their electrical function using multi-site optical mapping of cell membrane potentials. Anisotropic polymer scaffolds made by leaching of aligned sucrose templates were seeded with neonatal rat cardiac cells and cultured in rotating bioreactors for 6-14 days. Cells aligned and interconnected inside the scaffolds and when stimulated by a point electrode, supported macroscopically continuous, anisotropic impulse propagation. By culture day 14, the ratio of conduction velocities along vs. across cardiac fibers reached a value of 2, similar to that in native neonatal ventricles, while action potential duration and maximum capture rate respectively decreased to 120 ms and increased to ~5 Hz. The shorter culture time and larger scaffold thickness were associated with increased incidence of sustained reentrant arrhythmias. In summary, this study is the first successful attempt to engineer a cm2-size, functional anisotropic cardiac tissue patch.
机译:这项研究的目的是设计具有均匀各向异性结构的心脏组织构造,并使用细胞膜电位的多部位光学测绘来评估其电功能。将通过沥滤对齐的蔗糖模板制成的各向异性聚合物支架接种新生大鼠心脏细胞,并在旋转的生物反应器中培养6-14天。细胞在支架内部排列并互连,并在受到点电极刺激时,支持宏观连续的各向异性脉冲传播。到第14天培养时,沿心纤维与跨心纤维的传导速度之比达到2,与天然新生儿心室类似,而动作电位持续时间和最大捕获率分别降低至120 ms并增加至〜5 Hz。较短的培养时间和较大的支架厚度与持续性折返性心律不齐的发生率增加相关。总而言之,这项研究是对cm 2 大小的功能性各向异性心脏组织贴片进行工程设计的首次成功尝试。

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