Science for Life Laboratory, Department of Microbiology, Tumor and Cell Biology, Karolinska Institutet, 171 65, Stockholm, Sweden.
Department of Biochemistry and Biophysics, Stockholm University, 106 91, Stockholm, Sweden.
J Am Soc Mass Spectrom. 2019 Aug;30(8):1385-1388. doi: 10.1007/s13361-019-02177-8. Epub 2019 Jul 8.
Modulating protein ion charge is a useful tool for the study of protein folding and interactions by electrospray ionization mass spectrometry. Here, we investigate activation-dependent charge reduction of protein ions with the chemical chaperone trimethylamine-N-oxide (TMAO). Based on experiments carried out on proteins ranging from 4.5 to 35 kDa, we find that when combined with collisional activation, TMAO removes approximately 60% of the charges acquired under native conditions. Ion mobility measurements furthermore show that TMAO-mediated charge reduction produces the same end charge state and arrival time distributions for native-like and denatured protein ions. Our results suggest that gas-phase collisions between the protein ions and TMAO result in proton transfer, in line with previous findings for dimethyl- and trimethylamine. By adjusting the energy of the collisions experienced by the ions, it is possible to control the degree of charge reduction, making TMAO a highly dynamic charge reducer that opens new avenues for manipulating protein charge states in ESI-MS and for investigating the relationship between protein charge and conformation. ᅟ.
调节蛋白质离子的电荷是电喷雾电离质谱研究蛋白质折叠和相互作用的有用工具。在这里,我们研究了化学伴侣三甲基氧化胺(TMAO)对蛋白离子的激活依赖性电荷还原作用。基于对 4.5 至 35 kDa 范围内的蛋白质进行的实验,我们发现当与碰撞激活结合使用时,TMAO 可去除在天然条件下获得的约 60%的电荷。离子淌度测量结果进一步表明,TMAO 介导的电荷还原会产生相同的最终电荷状态和到达时间分布,适用于天然和变性的蛋白质离子。我们的结果表明,在气相中,蛋白质离子与 TMAO 之间的碰撞会导致质子转移,这与先前关于二甲胺和三甲胺的发现一致。通过调整离子经历的碰撞能量,可以控制电荷还原的程度,使 TMAO 成为一种高度动态的电荷还原剂,为在 ESI-MS 中操纵蛋白质电荷状态以及研究蛋白质电荷与构象之间的关系开辟了新途径。