首页> 外文期刊>Journal of Bioactive and Compatible Polymers >Microfluidic array chip based on excimer laser processing technology for the construction of in vitro graphical neuronal network
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Microfluidic array chip based on excimer laser processing technology for the construction of in vitro graphical neuronal network

机译:基于准分子激光加工技术的微流体阵列芯片构建体外图形神经元网络

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摘要

To construct a graphical neural network in vitro and explore the morphological effects of neural network structural changes on neurons, this study aimed to introduce a method for fabricating microfluidic array chips with different graphical structures based on 248-nm excimer laser one-step etching. Through the comparative analysis of the graphical neural network cultured on our microfluidic array chip with the one on the glass slide, the morphological effects of the neural network on the morphology of the neurons were studied. First, the design of the chip was completed according to the specific structure of the neurons and the simulation of the flow field. The chips were fabricated by excimer laser processing combined with the casting technology. Neurons were cultured on the chip, and a graphical neural network was formed. The growth status of the neural network was analyzed by microscopy and immunofluorescence technology, and compared with the random neural network cultured on glass slides. The results showed that the neurons on the array chips grew in microchannels, and neurites grew along the direction of the channel, interlacing to form a neural network. Furthermore, when the structure of the neural network was graphically changed, the internal neuron morphology changed: on the same culture days, the maximum length of the neurites of the graphical neural network was higher than the average length of the neurites of the random neural network. This research can provide the foundation for the exploration of the neural network mechanism of neurological diseases.
机译:本研究探讨了神经网络结构变化的神经网络结构变化的形态学作用,探讨了一种基于248-NM准分子激光一步蚀刻制造具有不同图形结构的微流体阵列芯片的方法。通过对微流体阵列芯片培养的图形神经网络的比较分析,其中玻璃载玻片上的一个,研究了神经网络对神经元形态的形态学。首先,根据神经元的特定结构和流场的模拟完成芯片的设计。通过准分子激光加工与铸造技术合并芯片制造芯片。神经元在芯片上培养,形成了图形神经网络。通过显微镜和免疫荧光技术分析神经网络的生长状态,并与玻璃载玻片上培养的随机神经网络相比。结果表明,阵列芯片上的神经元在微通道中增长,神经肌腱沿着通道的方向增长,交织以形成神经网络。此外,当神经网络的结构被图形改变时,内部神经元形态发生变化:在相同的培养日时,图形神经网络的神经突的最大长度高于随机神经网络的神经肌腱的平均长度。该研究可以为探索神经疾病的神经网络机制提供奠基。

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