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A life support system for stimulation of and recording from rodent neuron networks grown on multi-electrode arrays

机译:生命支持系统,用于刺激和记录在多电极阵列上生长的啮齿动物神经元网络

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One promising approach to studying how large numbers of neurons interact is the combination of neuronal cell cultures with multi-electrode arrays (MEAs.) Together, these allow simultaneous recording from many neurons. A particular challenge has been the long-term growth of organotypic neuronal cultures on MEAs. These cultures need alternate exposure to air and a liquid growth medium. Continuous rotary motion (of suitable closed chambers) provides this, but greatly complicates recording of large numbers of low-level electrical signals. An alternative approach is to rock chambers incorporating MEAs cyclically through a limited angle, thus facilitating direct connections. A variable speed trajectory balances cycle frequency against the shear forces acting to dislodge the tissue. Different trajectories can be used to optimize culture health during different development periods. We discuss the design of a microprocessor based life-support system that implements such a limited-angle, variable-speed cycle to culture rat brain slices on MEAs, while maintaining direct electrical connections. We show some of the neurophysiological results thus made possible, and consider improvements for a subsequent life-support system for future research.
机译:研究大量神经元如何相互作用的一种有前途的方法是将神经元细胞培养物与多电极阵列(MEA)结合使用,它们可以同时记录许多神经元。一个特别的挑战是器官型神经元培养物在MEA上的长期生长。这些培养物需要交替暴露于空气和液体生长培养基。连续的旋转运动(在合适的密闭腔室中)提供了这一点,但使大量低电平电子信号的记录大大复杂化了。另一种方法是对岩石室进行有限角度周期性地结合MEA,从而促进直接连接。变速轨迹使循环频率与作用于使组织移位的剪切力平衡。在不同的发展时期,可以使用不同的轨迹来优化文化健康。我们讨论基于微处理器的生命支持系统的设计,该系统实现了这种有限角度的变速循环,以在MEA上培养大鼠脑片,同时保持直接的电连接。我们展示了由此获得的一些神经生理学结果,并考虑了后续生命支持系统的改进,以供将来研究。

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