Engineering Center for Biomedicine, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410081, China.
Analyst. 2011 Jun 7;136(11):2385-90. doi: 10.1039/c0an00879f. Epub 2011 Apr 14.
Desorption electrospray ionization mass spectrometry (DESI-MS) has been developed dramatically as a powerful tool for the rapid analysis of samples in their native environment. Here a novel application of DESI-MS was demonstrated for direct probing of the reactive intermediates in the liquid-phase Eschweiler-Clarke reaction, a reductive amination reaction whereby a primary (or secondary) amine is successively N-methylated using excess formaldehyde and formic acid. The intermediates ion species of sodiated amino alcohol (I + Na) and iminium (II), along with the corresponding protonated molecules of amine reactant (M + H) and end product (III + H), were simultaneously and unambiguously characterized by the positive ion DESI-MS in the native liquid-phase reactive condition. The operating variables were optimized for better analytical performance including the spray solvent composition (such as formic acid concentration, proportion of methanol-water), voltage applied, spray spatial distance and incident angle. The feasibility of the reactive DESI-MS detection of acid-formaldehyde methylations was further validated using amines of a large variety of chemical types (2 primary and 3 secondary amines). Thus, the liquid-phase reactive DESI-MS technique allows the direct analysis of reaction intermediates occurring in complex liquid solutions without sample preparation to provide a valuable insight into chemical reaction mechanisms.
解吸电喷雾电离质谱(DESI-MS)作为一种快速分析样品的强大工具,在其天然环境中的应用得到了迅速发展。本文展示了 DESI-MS 的一种新应用,用于直接探测液相 Eschweiler-Clarke 反应中的反应中间体,该反应是一种还原胺化反应,其中伯(或仲)胺使用过量的甲醛和甲酸依次进行 N-甲基化。通过正离子 DESI-MS 在天然液相反应条件下,同时且明确地鉴定了加钠离子的氨基醇(I+Na) 和亚铵(II)离子物种,以及相应的胺反应物(M+H)和最终产物(III+H)的质子化分子。通过优化喷雾溶剂组成(如甲酸浓度、甲醇-水比例)、施加电压、喷雾空间距离和入射角等操作变量,以获得更好的分析性能。通过使用多种化学类型的胺(2 种伯胺和 3 种仲胺)进一步验证了酸-甲醛甲基化的反应性 DESI-MS 检测的可行性。因此,液相反应性 DESI-MS 技术允许在无需样品制备的情况下直接分析复杂液相溶液中发生的反应中间体,从而为化学反应机制提供有价值的见解。