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Microfluidic Approaches to Synchrotron Radiation-Based Fourier Transform Infrared (SR-FTIR) Spectral Microscopy of Living Biosystems

机译:基于同步辐射的活生物系统基于傅立叶变换红外(SR-FTIR)光谱显微镜的微流控方法。

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摘要

A long-standing desire in biological and biomedical sciences is to be able to probe cellular chemistry as biological processes are happening inside living cells. Synchrotron radiation-based Fourier transform infrared (SR-FTIR) spectral microscopy is a label-free and nondestructive analytical technique that can provide spatiotemporal distributions and relative abundances of biomolecules of a specimen by their characteristic vibrational modes. Despite great progress in recent years, SR-FTIR imaging of living biological systems remains challenging because of the demanding requirements on environmental control and strong infrared absorption of water. To meet this challenge, microfluidic devices have emerged as a method to control the water thickness while providing a hospitable environment to measure cellular processes and responses over many hours or days. This paper will provide an overview of microfluidic device development for SR-FTIR imaging of living biological systems, provide contrast between the various techniques including closed and open-channel designs, and discuss future directions of development within this area. Even as the fundamental science and technological demonstrations develop, other ongoing issues must be addressed; for example, choosing applications whose experimental requirements closely match device capabilities, and developing strategies to efficiently complete the cycle of development. These will require imagination, ingenuity and collaboration.
机译:生物和生物医学领域的长期需求是能够在活细胞内部发生生物过程时探测细胞化学。基于同步辐射的傅立叶变换红外(SR-FTIR)光谱显微镜是一种无标记且无损的分析技术,可通过其特征振动模式提供标本生物分子的时空分布和相对丰度。尽管近年来取得了长足的进步,但由于对环境控制和对水的强烈红外吸收的苛刻要求,对生物系统的SR-FTIR成像仍然具有挑战性。为了应对这一挑战,微流控设备已成为一种控制水厚度的方法,同时提供了一个好客的环境来测量细胞在数小时或数天的过程和响应。本文将概述用于活生物系统的SR-FTIR成像的微流体装置开发,提供包括封闭通道设计和开放通道设计在内的各种技术之间的对比,并讨论该领域的未来发展方向。即使随着基础科学技术示范的发展,也必须解决其他持续存在的问题;例如,选择实验要求与设备功能紧密匹配的应用,并制定策略以有效地完成开发周期。这些将需要想象力,独创性和协作能力。

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