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. 2021 Mar 25;12(11):2780-2787. doi: 10.1021/acs.jpclett.1c00125. Epub 2021 Mar 12.
This Letter reports a counterintuitive observation that methylation of the glycine-iodide cluster leads to fewer conformations and spectroscopic simplicity. Cryogenic "iodide-tagging" negative ion photoelectron spectroscopy (NIPES) is used to probe specific binding sites of three -methylated glycine derivatives, i.e., -methylglycine (sarcosine), ,-dimethylglycine, and ,,-trimethylglycine (glycine betaine). NIPES reveals a progressive spectral simplification of the iodide clusters with increasing methylation due to fewer contributing structures. Low energy conformers and tautomers of each cluster are computationally identified, and those observed in the experiments are assigned based on excellent agreement between the NIPE spectra and theoretical simulations. Zwitterionic cluster structures are found to be less stable than their canonical forms and do not contribute to the observed spectra. This work demonstrates the power of iodide-tagging NIPES in probing conformations of amino acid-iodide clusters and provides a molecular level understanding on the effect of methyl substitution on amino acid binding sites.
这封信件报告了一个反直觉的观察结果,即甘氨酸-碘簇的甲基化导致构象减少和光谱简化。低温“碘标记”负离子光电电子能谱(NIPES)用于探测三种甲基化甘氨酸衍生物,即 -甲基甘氨酸(肌氨酸)、 -二甲基甘氨酸和 -, -三甲基甘氨酸(甘氨酸甜菜碱)的特定结合位点。由于贡献结构较少,NIPES 揭示了随着甲基化程度的增加,碘簇的光谱逐渐简化。计算确定了每个簇的低能构象和互变异构体,并根据 NIPE 光谱与理论模拟之间的极好一致性,对实验中观察到的构象进行了分配。两性离子簇结构被发现不如其规范形式稳定,并且不会对观察到的光谱做出贡献。这项工作证明了碘标记 NIPES 在探测氨基酸-碘簇构象方面的强大功能,并提供了对甲基取代对氨基酸结合位点影响的分子水平理解。