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一种具有高时间分辨率的改进型红外光谱仪及其在研究GTP酶Ras快速构象变化中的应用。

A modified infrared spectrometer with high time resolution and its application for investigating fast conformational changes of the GTPase Ras.

作者信息

Lin Jie, Gerwert Klaus, Kötting Carsten

机构信息

Department of Biophysics, Ruhr-University Bochum, Universitäetsstr. 150, Bochum 44801, Germany.

出版信息

Appl Spectrosc. 2014;68(5):531-5. doi: 10.1366/13-07320.

DOI:10.1366/13-07320
PMID:25014595
Abstract

Time-resolved infrared spectroscopy is a valuable tool for the investigation of proteins and protein interactions. The investigation of many biological processes is possible by means of caged compounds, which set free biologically active substances upon light activation. Some caged compounds could provide sub-nanosecond time resolution, e.g., para-hydroxyphenacyl-guanosine 5'-triphosphate (GTP) forms GTP in picoseconds. However, the time resolution in single shot experiments with rapid-scan Fourier transform infrared (FT-IR) spectrometers is limited to about 10 ms. Here we use an infrared diode laser instead of the conventional globar and achieve a time resolution of 100 ns. This allows for the time-resolved measurement of the fast Ras(off) to Ras(on) conformational change at room temperature. We quantified the activation parameters for this reaction and found that the free energy of activation for this reaction is mainly enthalpic. Investigation of the same reaction in the presence of the Ras binding domain of the effector Raf (RafRBD) reveals a four orders of magnitude faster reaction, indicating that Ras·RafRBD complex formation directly induces the conformational change. Recent developments of broadly tunable quantum cascade lasers will further improve time resolution and usability of the setup. The reported 100 ns time resolution is the best achieved for a non-repetitive experiment so far.

摘要

时间分辨红外光谱是研究蛋白质及蛋白质相互作用的一种重要工具。借助笼形化合物可以对许多生物过程进行研究,这些笼形化合物在光激活后会释放出生物活性物质。一些笼形化合物能够提供亚纳秒级的时间分辨率,例如对羟基苯甲酰鸟苷5'-三磷酸(GTP)在皮秒内就能形成GTP。然而,使用快速扫描傅里叶变换红外(FT-IR)光谱仪进行单次实验时,时间分辨率限制在约10毫秒。在此,我们使用红外二极管激光器替代传统的碳硅棒,并实现了100纳秒的时间分辨率。这使得在室温下能够对Ras(关闭)到Ras(开启)的快速构象变化进行时间分辨测量。我们对该反应的活化参数进行了量化,发现该反应的活化自由能主要是焓变。在效应器Raf的Ras结合结构域(RafRBD)存在的情况下对同一反应进行研究,结果显示反应速度加快了四个数量级,这表明Ras·RafRBD复合物的形成直接诱导了构象变化。宽可调谐量子级联激光器的最新进展将进一步提高该装置的时间分辨率和实用性。所报道的100纳秒时间分辨率是迄今为止非重复实验所达到的最佳结果。

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