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Quantifying Biased Response of Axon to Chemical Gradient. Steepness in a Microfluidic Device

机译:量化轴突对化学梯度的偏倚响应。微流控设备中的陡度

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Axons are very sensitive to molecular gradients and can discriminate extremely small differences in gradient steepness. Microfluidic devices capable of generating chemical gradients and adjusting their steepness could be used to quantify the sensitivity of axonal response. Here, we present a versatile and robust microfluidic device that can generate substrate-bound molecular gradients with evenly varying steepness on a single chip to precisely quantify axonal response. In this device, two solutions are perfused into a central channel via two inlets while partially flowing into two peripheral channels through interconnecting grooves, which gradually decrease the fluid velocity along the central channel. Molecular gradients with evenly and gradually decreased steepness can therefore be generated with a high resolution that is less than 0.05%/mm. In addition, the overall distribution range and resolution of the gradient steepness can be highly and flexibly controlled by adjusting various parameters of the device. Using this device, we quantified the hippocampal axonal response to substrate-bound laminin and ephrin-A5 gradients with varying steepnesses. Our results provided more detailed information on how and to what extent different steepnesses guide hippocampal neuron development during the initial outgrowth. Furthermore, our results show that axons can sensitively respond to very shallow laminin and ephrin-A5 gradients, which could effectively initiate biased differentiation of hippocampal neurons in the steepness range investigated in this study.
机译:轴突对分子梯度非常敏感,可以区分梯度陡度的极小差异。能够产生化学梯度并调节其陡度的微流体装置可用于量化轴突反应的敏感性。在这里,我们提出了一种通用而强大的微流控设备,该设备可以在单个芯片上产生具有均匀变化的陡度的底物结合分子梯度,以精确地定量轴突反应。在该装置中,两种溶液通过两个入口灌注到中央通道中,同时通过互连凹槽部分流入两个外围通道中,这逐渐降低了沿着中央通道的流体速度。因此,可以以小于0.05%/ mm的高分辨率生成陡度均匀且逐渐减小的分子梯度。另外,可以通过调节设备的各种参数来高度灵活地控制总体分布范围和梯度陡度的分辨率。使用此设备,我们量化了海底轴突对底物结合层粘连蛋白和ephrin-A5梯度不同陡度的反应。我们的结果提供了有关在初始生长过程中不同陡度如何以及在多大程度上引导海马神经元发育的详细信息。此外,我们的结果表明,轴突可以敏感地响应非常薄的层粘连蛋白和ephrin-A5梯度,从而可以有效地引发在这项研究中研究的陡峭范围内海马神经元的偏向分化。

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