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Ultrahigh-Resolution Differential Ion Mobility Spectrometry Using Extended Separation Times

机译:使用延长的分离时间的超高分辨率差分离子迁移谱

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Ion mobility spectrometry (IMS), and particularly differential IMS or field asymmetric waveform IMS (FAIMS), is emerging as a versatile tool for separation and identification of gas-phase ions, especially in conjunction with mass spectrometry. For over two decades since its inception, the utility of FAIMS was constrained by resolving power (R) of less than approx20. Stronger electric fields and optimized gas mixtures have recently raised achievable R to approx200, but further progress with such approaches is impeded by electrical breakdown. However, the resolving power of planar FAIMS devices using any gas and field intensity scales as the square root of separation time (t). Here, we extended t from the previous maximum of 0.2 s up to 4-fold by reducing the carrier gas flow and increased the resolving power by up to 2-fold as predicted, to >300 for multiply charged peptides. The resulting resolution gain has enabled separation of previously "co-eluting" peptide isomers, including folding conformers and localization variants of modified peptides. More broadly, a peak capacity of approx200 has been reached in tryptic digest separations.
机译:离子迁移谱(IMS),尤其是差分IMS或场不对称波形IMS(FAIMS),正在成为一种用于分离和鉴定气相离子的通用工具,尤其是与质谱联用。自成立以来的20多年来,FAIMS的实用性受到解析力(R)小于约20的限制。最近,更强的电场和优化的气体混合物将可达到的R提高到大约200,但是这种方法的进一步发展受到电击穿的阻碍。然而,使用任何气体和场强标度作为分离时间(t)的平方根的平面FAIMS装置的分辨能力。在这里,我们通过减少载气流量将t从之前的最大0.2 s扩展到了4倍,并将解析能力提高了2倍,如预期的那样,对于带多个电荷的肽,其解析度达到了> 300。所得的分辨率提高使得能够分离先前的“共洗脱”肽异构体,包括折叠构象异构体和修饰肽的定位变体。更广泛地说,在胰蛋白酶消化物分离中已达到约200的峰容量。

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