利用基于量子级联激光的红外光谱单次探测蛋白质构象变化和质子化动力学。

Luiz Schubert, Pit Langner, D. Ehrenberg, V. Lórenz-Fonfría, J. Heberle
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引用次数: 7

摘要

中红外光谱是研究蛋白质反应的一种强大且无标记的技术。在这项研究中,我们使用基于量子级联激光的双梳光谱通过单次实验来探测蛋白质的构象变化和质子化事件。利用表征良好的膜蛋白细菌视紫红质,我们将双梳光谱与自制的可调谐量子级联激光(QCL)扫描光谱仪作为高时间分辨率监测不可逆反应的工具进行了比较。综上所述,通过单次实验证明,基于qcl的红外光谱技术在功能相关的蛋白质结构变化和质子易位追踪方面是可行的。因此,我们设想该技术应用于监测不可逆反应动力学的光明前景,如(生物)化学转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Protein conformational changes and protonation dynamics probed by a single shot using quantum-cascade-laser-based IR spectroscopy.
Mid-IR spectroscopy is a powerful and label-free technique to investigate protein reactions. In this study, we use quantum-cascade-laser-based dual-comb spectroscopy to probe protein conformational changes and protonation events by a single-shot experiment. By using a well-characterized membrane protein, bacteriorhodopsin, we provide a comparison between dual-comb spectroscopy and our homebuilt tunable quantum cascade laser (QCL)-based scanning spectrometer as tools to monitor irreversible reactions with high time resolution. In conclusion, QCL-based infrared spectroscopy is demonstrated to be feasible for tracing functionally relevant protein structural changes and proton translocations by single-shot experiments. Thus, we envisage a bright future for applications of this technology for monitoring the kinetics of irreversible reactions as in (bio-)chemical transformations.
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