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首页> 外文期刊>European journal of mass spectrometry >Deciphering drift time measurements from travelling wave ion mobility spectrometry mass spectrometry studies
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Deciphering drift time measurements from travelling wave ion mobility spectrometry mass spectrometry studies

机译:行波离子迁移率质谱法研究的破译漂移时间测量

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Detailed knowledge of the tertiary and quaternary structure of proteins and protein complexes is of immense importance in under_standing their functionality. Similarly, variations in the conformational states of proteins form the underlying mechanisms behind many biomolecular processes, numerous of which are disease-related. Thus, the availability of reliable and accurate biophysical techniques that can provide detailed information concerning these issues is of paramount importance. Ion mobility spectrometry (IMS) coupled to mass spectrometry (MS) offers a unique opportunity to separate multi-component biomolecular entities and to measure the molecular mass and collision cross-section of individual components in a single, rapid ( 2 min) experiment, providing 3D-architectural informa_tion directly. Here we report a method of calibrating a commercially available electrospray ionisation (ESl)-travelling wave ion mobility spectrometry (TWIMS)-mass spectrometer using known cross-sectional areas determined for a range of biomolecules by conventional IMS-MS. Using this method of calibration, we have analysed a range of proteins of differing mass and 3D architecture in their native conformations by ESI-TWIMS-MS and found that the cross-sectional areas measured in this way compare extremely favourably with cross-sectional areas calculated using an in-house computing method based on Protein Data Bank NMR-derived co-ordinates. This not only provides a high degree of confidence in the calibration method, but also suggests that the gas phase ESI-TWIMS-MS measurements relate well to solution-based measurements derived from other biophysical techniques. In order to determine which instrumental parameters affect the ESI-TWIMS-MS cross-sectional area calibration, a systematic study of the parameters used to optimise TWIMS drift time separations has been carried out, observing the effect each parameter has on drift times and IMS resolution. Finally, the ESI_TWIMS-MS cross-sectional area calibration has been applied to the analysis of the amyloidogenic protein 132-microglobulin and meas_urements for three co-populated conformational families, present under denaturing conditions, have been made: the folded, partially unfolded and unfolded states.
机译:对蛋白质和蛋白质复合物的三级和四级结构的详细了解对于了解它们的功能非常重要。同样,蛋白质构象状态的变化形成了许多生物分子过程背后的潜在机制,其中许多与疾病有关。因此,能够提供有关这些问题的详细信息的可靠,准确的生物物理技术的可用性至关重要。离子淌度质谱(IMS)与质谱(MS)结合提供了独特的机会,可以在一个快速(2分钟)的实验中分离多组分生物分子实体,并测量单个组分的分子量和碰撞截面,从而提供直接进行3D建筑信息。在这里,我们报告了一种校准方法,该方法使用通过常规IMS-MS为一系列生物分子确定的已知横截面来校准市售电喷雾电离(ESl)-行波离子迁移率光谱(TWIMS)-质谱仪。使用这种校准方法,我们通过ESI-TWIMS-MS分析了一系列天然质量不同的蛋白质和3D结构的蛋白质,发现用这种方法测得的截面积与计算出的截面积相比非常有利使用基于蛋白质数据库NMR坐标的内部计算方法。这不仅为校准方法提供了高度的可信度,而且表明气相ESI-TWIMS-MS测量与源自其他生物物理技术的基于溶液的测量非常相关。为了确定哪些仪器参数会影响ESI-TWIMS-MS横截面积校准,已经对用于优化TWIMS漂移时间间隔的参数进行了系统研究,观察了每个参数对漂移时间和IMS分辨率的影响。最后,将ESI_TWIMS-MS横截面积校准应用于分析淀粉样蛋白132-微球蛋白,并测量了在变性条件下存在的三个共居构象家族的折叠度:折叠,部分展开和展开状态。

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