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A novel method of cultivating cardiac myocytes in agarose microchamber chips for studying cell synchronization

机译:在琼脂糖微腔芯片中培养心肌细胞的新方法用于研究细胞同步

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摘要

We have developed a new method that enables agar microstructures to be used to cultivate cardiac myocyte cells in a manner that allows their connection patterns to be controlled. Non-contact three-dimensional photo-thermal etching with a 1064-nm infrared focused laser beam was used to form the shapes of agar microstructures. This wavelength was selected as it is not absorbed by water or agar. Identical rat cardiac myocytes were cultured in adjacent microstructures connected by microchannels and the interactions of asynchronous beating cardiac myocyte cells observed. Two isolated and independently beating cardiac myocytes were shown to form contacts through the narrow microchannels and by 90 minutes had synchronized their oscillations. This occurred by one of the two cells stopping their oscillation and following the pattern of the other cell. In contrast, when two sets of synchronized beating cells came into contact, those two sets synchronized without any observable interruptions to their rhythms. The results indicate that the synchronization process of cardiac myocytes may be dependent on the community size and network pattern of these cells.
机译:我们已经开发出一种新方法,可以将琼脂微结构用于培养心肌细胞的方式,以控制它们的连接方式。使用具有1064 nm红外聚焦激光束的非接触式三维光热蚀刻来形成琼脂微结构的形状。选择该波长是因为它不会被水或琼脂吸收。在通过微通道连接的相邻微结构中培养相同的大鼠心肌细胞,并观察到异步跳动的心肌细胞的相互作用。显示了两个分离且独立跳动的心肌细胞通过狭窄的微通道形成接触,并在90分钟之前使它们的振荡同步。这是由于两个单元格之一停止振荡并遵循另一个单元格的模式而发生的。相反,当两组同步的跳动细胞接触时,这两组同步而没有任何明显的节奏中断。结果表明,心肌细胞的同步过程可能取决于这些细胞的社区规模和网络模式。

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