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An agar-based on-chip neural-cell-cultivation system for stepwise control of network pattern generation during cultivation

机译:基于琼脂的片上神经细胞培养系统,用于逐步控制培养过程中网络模式的生成

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We have developed a new type of single-cell based on-chip cell-cultivation system with an agarose microchamber (AMC) array and a photo-thermal etching module for step-by-step topographical control of the network patterns of living neural cells during long-term cultivation. The advantages of this system are that (1) it can control positions and numbers of cells for cultivation by using agar-based microchambers, and (2) it can change the neural network complexity during cultivation by photo-thermal melting a portion of agar at the focal point of a 1064 nm infrared laser beam. This laser wavelength is permeable with respect to water and agarose, and it is only absorbed at the thin chromium layer on the chromium-coated glass slide surface at the bottom of the agarose layer. With adequate laser power, we can easily fabricate narrow tunnel-shaped channels between the microchambers at the bottom of the agar layer without the complicated steps conventional microfabrication processes entail even during cultivation; we demonstrated that rat hippocampal cells in two adjacent chambers formed fiber connections through new connections between chambers after these had been photo-thermally fabricated. We also verified the fiber connection between those cells by using calcium-based fluorescent microscopy. These results indicate that this system can potentially be used for studying the complexity of neural network patterns for epigenetic memorization.
机译:我们已经开发了一种新型的基于单细胞的片上细胞培养系统,该系统具有琼脂糖微腔(AMC)阵列和光热蚀刻模块,可逐步控制地形图中活神经细胞的网络模式长期栽培。该系统的优点是:(1)通过使用琼脂基微腔室可以控制培养细胞的位置和数量;(2)在培养过程中,通过将琼脂的一部分光热融化,可以改变神经网络的复杂性。 1064 nm红外激光束的焦点。该激光波长对于水和琼脂糖是可渗透的,并且仅在琼脂糖层底部的镀铬玻璃载玻片表面上的薄铬层处吸收。有了足够的激光功率,我们就可以轻松地在琼脂层底部的微腔之间制造狭窄的隧道状通道,而无需复杂的步骤,即使是在培养过程中,常规的微加工过程也无需进行;我们证明了在两个相邻腔室中的大鼠海马细胞经过光热加工后,通过腔室之间的新连接形成了纤维连接。我们还通过使用基于钙的荧光显微镜验证了这些细胞之间的纤维连接。这些结果表明,该系统可以潜在地用于研究用于表观遗传记忆的神经网络模式的复杂性。

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