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Acoustofluidic Chemical Waveform Generator and Switch

机译:声流体化学波形发生器和开关

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Eliciting a cellular response to a changing chemical microenvironment is central to many biological processes including gene expression, cell migration, differentiation, apoptosis, and intercellular signaling. The nature and scope of the response is highly dependent upon the spatiotemporal characteristics of the stimulus. To date, studies that investigate this phenomenon have been limited to digital (or step) chemical stimulation with little control over the temporal counterparts. Here, we demonstrate an acoustofluidic (i.e., fusion of acoustics and microfluidics) approach for generating programmable chemical waveforms that permits continuous modulation of the signal characteristics including the amplitude (i.e., sample concentration), shape, frequency, and duty cycle, with frequencies reaching up to 30 Hz. Furthermore, we show fast switching between multiple distinct stimuli, wherein the waveform of each stimulus is independently controlled. Using our device, we characterized the frequency-dependent activation and internalization of the beta(2)-adrenergic receptor (beta(2)-AR), a prototypic G-protein coupled receptor (GPCR), using epinephrine. The acoustofluidic-based programmable chemical waveform generation and switching method presented herein is expected to be a powerful tool for the investigation and characterization of the kinetics and other dynamic properties of many biological and biochemical processes.
机译:引起细胞对变化的化学微环境的反应是许多生物学过程的核心,包括基因表达,细胞迁移,分化,凋亡和细胞间信号传导。反应的性质和范围在很大程度上取决于刺激的时空特征。迄今为止,研究这种现象的研究仅限于数字(或步进)化学刺激,对时间对应物几乎没有控制。在这里,我们演示了一种声流方法(即声学和微流体技术的融合),用于生成可编程化学波形,该方法允许对信号特性进行连续调制,包括幅度(即样品浓度),形状,频率和占空比,并达到高达30 Hz。此外,我们显示了多个不同刺激之间的快速切换,其中每个刺激的波形均受到独立控制。使用我们的设备,我们使用肾上腺素表征了β-(2)-肾上腺素能受体(beta(2)-AR)(一种原型G蛋白偶联受体(GPCR))的频率依赖性激活和内在化。预计本文介绍的基于声流体的可编程化学波形生成和切换方法将成为研究和表征许多生物和生化过程的动力学和其他动力学特性的强大工具。

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