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Electrospray ionization nigh-resolution ion mobility spectrometry for the detection of organic compounds, 1. Amino acids

机译:电喷雾电离近分辨率离子迁移谱法,用于检测有机化合物1.氨基酸

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Our aim in this investigation was to demonstrate the potential of the high-resolution electrospray ionization ion mobility spectrometry (ESI-IMS) technique as an analytical separation tool in analyzing biomolecular mixtures to pursue astrobiological objectives of searching for the chemical signatures of life during an in-situ exploration of solar system bodies. Because amino acids represent the basic building blocks of life, we used common amino acids to conduct the first part of our investigation, which is being reported here, to demonstrate the feasibility of using the ESI-IMS technique for detection of the chemical signatures of life. The ion mobilities of common amino acids were determined by electrospray ionization ion mobility spectrometry using three different drift gases (Nz, Ar, and CO2), We demonstrated that the selectivity can be vastly improved in ion mobility spectroscopy (IMS) in detecting organic molecules by using different drift gases. When a judicial choice of drift gas is made, a vastly improved separation of two different amino acid ions resulted. It was found that each of the studied amino acids could be uniquely identified from the others, with the exception of alanine and glycine, which were never separable by more then 0.1 ms. This unique identification is a result of the different polarizabilities of the various drift gases. In addition, a better separation was achieved by changing the drift voltage in successive experimental runs without significantly degrading the resolution. We also report the result of our analysis of liquid samples containing mixtures of amino acids. [References: 13]
机译:我们在这项研究中的目的是证明高分辨率电喷雾电离离子迁移谱(ESI-IMS)技术作为分析分离工具分析生物分子混合物的潜力,以追求在生命周期中寻找生命化学特征的天体生物学目标。太阳系物体的原位勘探。由于氨基酸是生命的基本组成部分,因此我们在本文的第一部分中使用了常见氨基酸进行了研究,以证明使用ESI-IMS技术检测生命化学特征的可行性。普通氨基酸的离子迁移率是使用三种不同的漂移气体(Nz,Ar和CO2)通过电喷雾电离离子迁移谱法测定的。我们证明,通过离子迁移谱法(IMS)检测有机分子,可以大大提高选择性。使用不同的漂移气体。当对漂移气体进行合理的选择时,可以大大改善两种不同氨基酸离子的分离。发现除了丙氨酸和甘氨酸以外,每种研究的氨基酸都可以唯一地彼此区别,丙氨酸和甘氨酸的分离时间不能超过0.1 ms。这种独特的识别是各种漂移气体极化率不同的结果。此外,通过在连续的实验运行中改变漂移电压可以实现更好的分离效果,而不会显着降低分辨率。我们还报告了我们对包含氨基酸混合物的液体样品进行分析的结果。 [参考:13]

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