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A novel microfluidic rapid freeze-quench device for trapping reactions intermediates for high field EPR analysis

机译:新型微流快速冻结装置,用于捕获反应中间体,用于高场EPR分析

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摘要

Rapid freeze quench electron paramagnetic resonance (RFQ)-EPR is a method for trapping short lived intermediates in chemical reactions and subjecting them to EPR spectroscopy investigation for their characterization. Two (or more) reacting components are mixed at room temperature and after some delay the mixture is sprayed into a cold trap and transferred into the EPR tube. A major caveat in using commercial RFQ-EPR for high field EPR applications is the relatively large amount of sample needed for each time point, a major part of which is wasted as the dead volume of the instrument. The small sample volume (~2 μl) needed for high field EPR spectrometers, such as W-band (~3.5 T, 95 GHz), that use cavities calls for the development of a microfluidic based RFQ-EPR apparatus. This is particularly important for biological applications because of the difficulties often encountered in producing large amounts of intrinsically paramagnetic proteins and spin labeled nucleic acid and proteins. Here we describe a dedicated microfluidic based RFQ-EPR apparatus suitable for small volume samples in the range of a few μl. The device is based on a previously published microfluidic mixer and features a new ejection mechanism and a novel cold trap that allows collection of a series of different time points in one continuous experiment. The reduction of a nitroxide radical with dithionite, employing the signal of Mn2+ as an internal standard was used to demonstrate the performance of the microfluidic RFQ apparatus.
机译:快速冻结淬灭电子顺磁共振(RFQ)-EPR是一种在化学反应中捕获短寿命中间体并对其进行表征的EPR光谱研究的方法。两种(或多种)反应组分在室温下混合,经过一段时间的延迟后,将混合物喷入冷阱并转移到EPR管中。使用商用RFQ-EPR进行高场EPR应用的一个主要警告是,每个时间点需要相对大量的样品,其中大部分浪费在仪器的死体积上。使用腔的高电场EPR光谱仪(例如W波段(〜3.5 T,95 GHz))所需的样品量小(约2μl),需要开发基于微流体的RFQ-EPR仪器。这对于生物学应用而言尤其重要,因为在生产大量本征顺磁性蛋白质以及自旋标记的核酸和蛋白质时经常会遇到困难。在这里,我们描述了一种基于微流控的专用RFQ-EPR仪器,适用于几微升范围内的小体积样品。该设备基于以前发布的微流体混合器,并具有新的喷射机制和新颖的冷阱,可以在一个连续实验中收集一系列不同的时间点。以Mn2 +信号为内标,用连二亚硫酸盐还原亚硝基自由基被用于证明微流体RFQ设备的性能。

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