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基于宽带激光的中红外光谱用于蛋白质分析和酶活性监测。

Broadband laser-based mid-IR spectroscopy for analysis of proteins and monitoring of enzyme activity.

作者信息

Schwaighofer Andreas, Akhgar Christopher K, Lendl Bernhard

机构信息

Research Division of Environmental Analytics, Process Analytics and Sensors, Institute of Chemical Technologies and Analytics, Technische Universität Wien, Getreidemarkt 9, 1060 Vienna, Austria.

Research Division of Environmental Analytics, Process Analytics and Sensors, Institute of Chemical Technologies and Analytics, Technische Universität Wien, Getreidemarkt 9, 1060 Vienna, Austria.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2021 May 15;253:119563. doi: 10.1016/j.saa.2021.119563. Epub 2021 Feb 7.

DOI:10.1016/j.saa.2021.119563
PMID:33621933
Abstract

Laser-based infrared (IR) spectroscopy is an emerging key technology for the analysis of solutes and for real-time reaction monitoring in liquids. Larger applicable pathlengths compared to the traditional gold standard Fourier transform IR (FTIR) spectroscopy enable robust measurements of analytes in a strongly absorbing matrix such as water. Recent advancements in laser development also provide large accessible spectral coverage thus overcoming an inherent drawback of laser-based IR spectroscopy. In this work, we benchmark a commercial room temperature operated broadband external cavity-quantum cascade laser (EC-QCL)-IR spectrometer with a spectral coverage of 400 cm against FTIR spectroscopy and showcase its application for measuring the secondary structure of proteins in water, and for monitoring the lipase-catalyzed saponification of triacetin. Regarding the obtained limit of detection (LOD), the laser-based spectrometer compared well to a research-grade FTIR spectrometer employing a liquid nitrogen cooled detector. With respect to a routine FTIR spectrometer equipped with a room temperature operated pyroelectric detector, a 15-fold increase in LOD was obtained in the spectral range of 1600-1700 cm. Characteristic spectral features in the amide I and amide II region of three representative proteins with different secondary structures could be measured at concentrations as low as 0.25 mg mL. Enzymatic hydrolysis of triacetin by lipase was monitored, demonstrating the advantage of a broad spectral coverage for following complex chemical reactions. The obtained results in combination with the portability and small footprint of the employed spectrometer opens a wide range of future applications in protein analysis and industrial process control, which cannot be readily met by FTIR spectroscopy without recurring to liquid nitrogen cooled detectors.

摘要

基于激光的红外(IR)光谱技术是一种新兴的关键技术,用于分析溶质以及实时监测液体中的反应。与传统的金标准傅里叶变换红外(FTIR)光谱相比,更大的适用光程长度使得能够在强吸收基质(如水)中对分析物进行稳健测量。激光技术的最新进展还提供了较大的可获取光谱范围,从而克服了基于激光的红外光谱技术的一个固有缺点。在这项工作中,我们将一台光谱覆盖范围为400 cm的商用室温操作宽带外腔量子级联激光器(EC-QCL)红外光谱仪与FTIR光谱仪进行了对比,并展示了其在测量水中蛋白质二级结构以及监测脂肪酶催化三醋精皂化反应方面的应用。关于获得的检测限(LOD),基于激光的光谱仪与采用液氮冷却探测器的研究级FTIR光谱仪相比表现良好。对于配备室温操作热释电探测器的常规FTIR光谱仪,在1600 - 1700 cm的光谱范围内,LOD提高了15倍。在低至0.25 mg/mL的浓度下,可以测量三种具有不同二级结构的代表性蛋白质在酰胺I和酰胺II区域的特征光谱特征。监测了脂肪酶对三醋精的酶促水解反应,证明了宽光谱覆盖范围在跟踪复杂化学反应方面的优势。所获得的结果,结合所采用光谱仪的便携性和小尺寸,为蛋白质分析和工业过程控制开辟了广泛的未来应用前景,而不使用液氮冷却探测器的FTIR光谱仪则难以轻易满足这些应用需求。

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