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基于 3D 微流控和成像 SAMDI 质谱的高通量酶动力学分析。

High-Throughput Enzyme Kinetics with 3D Microfluidics and Imaging SAMDI Mass Spectrometry.

出版信息

Anal Chem. 2018 Nov 6;90(21):13096-13103. doi: 10.1021/acs.analchem.8b04391. Epub 2018 Oct 10.

Abstract

Microfluidic systems are important for performing precise reagent manipulations and reducing material consumption in biological assays. However, optical detection methods limit analyses to fluorescent or UV-active compounds and traditional 2D fluidic designs have limited degrees of freedom. This article describes a microfluidic device that has three inputs and performs 2592 distinct enzyme reactions using only 150 μL of reagent with quantitative characterization. This article also introduces imaging self-assembled monolayers for matrix-assisted laser desorption/ionization mass spectrometry (iSAMDI-MS) to map reaction progress, by immobilization of the product onto the floor of the microfluidic channel, into an image that is used for calculating the Michaelis constant ( K). This approach expands the scope of imaging mass spectrometry, microfluidic detection strategies, and the design of high-throughput reaction systems.

摘要

微流控系统对于执行精确的试剂操作和减少生物分析中的材料消耗非常重要。然而,光学检测方法限制了分析只能针对荧光或 UV 活性化合物,而传统的 2D 流体设计自由度有限。本文描述了一种微流控设备,它有三个输入,仅使用 150 μL 的试剂就可以进行 2592 种不同的酶反应,并进行定量表征。本文还介绍了用于基质辅助激光解吸/电离质谱(iSAMDI-MS)的成像自组装单层(iSAMDI-MS),通过将产物固定在微流道的底部,将反应进度映射成图像,用于计算米氏常数(K)。这种方法扩展了成像质谱、微流控检测策略以及高通量反应系统设计的范围。

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