ARC Centre of Excellence for Free Radical Chemistry and Biotechnology, School of Chemistry, University of Wollongong, New South Wales 2522, Australia.
J Phys Chem A. 2013 Feb 14;117(6):1228-32. doi: 10.1021/jp305470j. Epub 2012 Aug 20.
Structural investigations of large biomolecules in the gas phase are challenging. Herein, it is reported that action spectroscopy taking advantage of facile carbon-iodine bond dissociation can be used to examine the structures of large molecules, including whole proteins. Iodotyrosine serves as the active chromophore, which yields distinctive spectra depending on the solvation of the side chain by the remainder of the molecule. Isolation of the chromophore yields a double featured peak at ~290 nm, which becomes a single peak with increasing solvation. Deprotonation of the side chain also leads to reduced apparent intensity and broadening of the action spectrum. The method can be successfully applied to both negatively and positively charged ions in various charge states, although electron detachment becomes a competitive channel for multiply charged anions. In all other cases, loss of iodine is by far the dominant channel which leads to high sensitivity and simple data analysis. The action spectra for iodotyrosine, the iodinated peptides KGYDAKA, DAYLDAG, and the small protein ubiquitin are reported in various charge states.
在气相中对大型生物分子进行结构研究具有挑战性。本文报道了一种利用易于发生碳-碘键断裂的作用光谱法来检测大分子结构的方法,包括完整蛋白质。碘代酪氨酸可作为活性生色团,其侧链的溶剂化状态会导致独特的光谱。生色团的分离在~290nm 处产生双峰,随着溶剂化程度的增加,双峰变成单峰。侧链去质子化也会导致明显强度降低和作用光谱变宽。该方法可成功应用于各种电荷状态下的正离子和负离子,尽管电子脱离对于多电荷阴离子而言是一个竞争通道。在所有其他情况下,碘的损失是迄今为止占主导地位的通道,这导致了高灵敏度和简单的数据分析。报告了不同电荷状态下碘代酪氨酸、碘代肽 KGYDAKA、DAYLDAG 和小蛋白泛素的作用光谱。