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采用液相微萃取探头质谱法对具有多孔膜壁的微流控装置内的内容物进行化学监测和成像。

Chemical Monitoring and Imaging of Contents within Microfluidic Devices Having a Porous Membrane Wall Using Liquid Microjunction Surface Sampling Probe Mass Spectrometry.

机构信息

Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831-6131, United States.

出版信息

J Am Soc Mass Spectrom. 2020 Apr 1;31(4):832-839. doi: 10.1021/jasms.9b00093. Epub 2020 Feb 28.

Abstract

The ability to observe dynamic chemical processes (e.g., signaling, transport, etc.) or using nondestructive chemical imaging opens a new door to understanding the complex dynamics of developing biological systems. With the advent of "biology-on-a-chip" devices has come the ability to monitor dynamic chemical processes in a controlled environment, using these engineered habitats to capture key features of natural systems while allowing visual observation of system development. Having the capability to spatially and temporally map the chemical signals within these devices may yield new insights into the forces that drive biosystem development. Here, a porous membrane sealed microfluidic device was designed to allow normal microfluidic operation while enabling continuous, location specific sampling and chemical characterization by liquid microjunction surface sampling probe mass spectrometry (LMJ-SSP MS). LMJ-SSP was used to extract fluids with nL-to-μL/min flow rates directly from selected areas of the microfluidic device without negatively impacting the device function. These extracts were subsequently characterized using MS. This technique was used to acquire MS images of the entirety of several multi-input microfluidic devices having different degrees of fluid mixing. LMJ-SSP MS imaging visualized the spatial distribution of chemical components within the microfluidic channels and could visualize chemical reactions occurring in the device. These microfluidic devices with a porous membrane wall are wholly compatible with the construction of biology-on-a-chip devices. This ultimately would enable correlation of biosystem physical structure with an evolving chemical environment.

摘要

观察动态化学过程(例如信号转导、物质运输等)的能力,或使用无损化学成像技术,为理解发育中生物系统的复杂动态过程开辟了新的途径。随着“芯片上的生物学”器件的出现,人们能够在受控环境中监测动态化学过程,利用这些工程化的小生境来捕捉自然系统的关键特征,同时能够对系统发育进行直观观察。如果能够在这些器件中对化学信号进行时空绘图,可能会深入了解驱动生物系统发育的力。在这里,设计了一种带有密封多孔膜的微流控装置,使其在允许正常微流控操作的同时,能够通过液相微区-表面采样探针质谱联用(LMJ-SSP MS)进行连续、位置特异性采样和化学特征分析。LMJ-SSP 用于从微流控装置的选定区域直接提取具有 nL 至 μL/min 流速的流体,而不会对装置功能产生负面影响。随后使用 MS 对这些提取物进行了表征。该技术用于获取多个多输入微流控装置的 MS 图像,这些装置的流体混合程度不同。LMJ-SSP MS 成像可直观显示微流道内化学组分的空间分布,并可观察到装置内发生的化学反应。具有多孔膜壁的这些微流控装置与“芯片上的生物学”器件的构建完全兼容。这最终将使生物系统的物理结构与不断变化的化学环境相关联成为可能。

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