Zhang Hanhui, Cao Wenjin, Yuan Qinqin, Zhou Xiaoguo, Valiev Marat, Kass Steven R, Wang Xue-Bin
Physical Sciences Division, Pacific Northwest National Laboratory, Richland, Washington 99352, United States.
Hefei National Laboratory for Physical Sciences at the Microscale, Department of Chemical Physics, University of Science and Technology of China, Hefei, Anhui 230026, P. R. China.
J Phys Chem Lett. 2020 Jun 4;11(11):4346-4352. doi: 10.1021/acs.jpclett.0c01099. Epub 2020 May 19.
This work showcases cryogenic and temperature-dependent "iodide-tagging" photoelectron spectroscopy to probe specific binding sites of amino acids using the glycine-iodide complex (Gly·I) as a case study. Multiple Gly·I isomers were generated from ambient electrospray ionization and kinetically isolated in a cryogenic ion trap. These structures were characterized with temperature-dependent "iodide-tagging" negative ion photoelectron spectroscopy (NIPES), where iodide was used as the "messenger" to interpret electronic energetics and structural information of various Gly·I isomers. Accompanied by theoretical computations and Franck-Condon simulations, a total of five cluster structures have been identified along with their various binding motifs. This work demonstrates that "iodide-tagging" NIPES is a powerful general means for probing specific binding interactions in biological molecules of interest.
这项工作展示了低温和温度依赖的“碘标记”光电子能谱,以甘氨酸 - 碘络合物(Gly·I)为例,探测氨基酸的特定结合位点。通过常压电喷雾电离产生了多种Gly·I异构体,并在低温离子阱中进行动力学分离。这些结构通过温度依赖的“碘标记”负离子光电子能谱(NIPES)进行表征,其中碘化物被用作“信使”来解释各种Gly·I异构体的电子能量学和结构信息。在理论计算和弗兰克 - 康登模拟的辅助下,总共确定了五种团簇结构及其各种结合模式。这项工作表明,“碘标记”NIPES是探测感兴趣的生物分子中特定结合相互作用的强大通用手段。