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首页> 外文期刊>The European physical journal, E. Soft matter >Transport of dynamic biochemical signals in a microfluidic single cell trapping channel with varying cross-sections
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Transport of dynamic biochemical signals in a microfluidic single cell trapping channel with varying cross-sections

机译:不同横截面的微流体单电池俘获通道中动态生化信号的运输

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.Dynamic biochemical signal control in vitro is important in the study of cellular responses to dynamic biochemical stimuli in microenvironment in vivo. To this end, we designed a microfluidic single cell trapping channel with varying cross-sections. In this work, we analyzed the transport of dynamic biochemical signals in steady and non-reversing pulsatile flows in such a microchannel. By numerically solving the 2D time-dependent Taylor-Aris dispersion equation, we studied the transport mechanism of different signals with varying parameters. The amplitude spectrum in steady flow shows that the trapping microchannel acts as a low-pass filter due to the longitudinal dispersion. The input signal can be modulated nonlinearly by the pulsatile flow. In addition, the nonlinear modulation effects are affected by the pulsatile flow frequency, the pulsatile flow amplitude and the average flow rate. When the flow frequency is much smaller or larger than that of the biochemical signal, the signal can be transmitted more efficiently. Besides, smaller pulsatile flow amplitude and larger average flow rate can decrease the nonlinear modulation and promote the signal transmission. These results demonstrate that in order to accurately load a desired dynamic biochemical signal to the trapped cell to probe the cellular dynamic response to the dynamic biochemical stimulus, the transport mechanism of the signals in the microchannel should be carefully considered.
机译:体外动力学信号控制在体内微环境中对动态生化刺激的研究中的重要性是重要的。为此,我们设计了一种具有不同横截面的微流体单电池捕获通道。在这项工作中,我们分析了这种微通道中的稳定和非反转脉动流中的动态生化信号的运输。通过数值求解2D时间依赖性泰勒 - aris色散方程,我们研究了不同参数的不同信号的传输机制。稳定流动的幅度谱表明,由于纵向分散,捕获的微通道用作低通滤波器。输入信号可以通过脉冲流量非线性地调制。此外,非线性调制效应受脉动流量频率,脉动流量幅度和平均流速的影响。当流量频率小得多或大于生物化学信号的流量时,可以更有效地传输信号。此外,较小的脉动流量幅度和更大的平均流速可以降低非线性调制并促进信号传输。这些结果表明,为了准确地将所需的动态生化信号加载到捕获的电池上以探测对动态生化刺激的蜂窝动态响应,应仔细考虑微通道中的信号中的信号的传输机制。

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