Institute of Microbiology of the Czech Academy of Sciences, 14220 Prague, Czech Republic.
Department of Biochemistry, Faculty of Science, Charles University, 12843 Prague, Czech Republic.
Anal Chem. 2024 Jan 30;96(4):1478-1487. doi: 10.1021/acs.analchem.3c03759. Epub 2024 Jan 16.
Protein radical labeling, like fast photochemical oxidation of proteins (FPOP), coupled to a top-down mass spectrometry (MS) analysis offers an alternative analytical method for probing protein structure or protein interaction with other biomolecules, for instance, proteins and DNA. However, with the increasing mass of studied analytes, the MS/MS spectra become complex and exhibit a low signal-to-noise ratio. Nevertheless, these difficulties may be overcome by protein isotope depletion. Thus, we aimed to use protein isotope depletion to analyze FPOP-oxidized samples by top-down MS analysis. For this purpose, we prepared isotopically natural (IN) and depleted (ID) forms of the FOXO4 DNA binding domain (FOXO4-DBD) and studied the protein-DNA interaction interface with double-stranded DNA, the insulin response element (IRE), after exposing the complex to hydroxyl radicals. As shown by comparing tandem mass spectra of natural and depleted proteins, the ID form increased the signal-to-noise ratio of useful fragment ions, thereby enhancing the sequence coverage by more than 19%. This improvement in the detection of fragment ions enabled us to detect 22 more oxidized residues in the ID samples than in the IN sample. Moreover, less common modifications were detected in the ID sample, including the formation of ketones and lysine carbonylation. Given the higher quality of ID top-down MSMS data set, these results provide more detailed information on the complex formation between transcription factors and DNA-response elements. Therefore, our study highlights the benefits of isotopic depletion for quantitative top-down proteomics. Data are available via ProteomeXchange with the identifier PXD044447.
蛋白质自由基标记,如快速光化学蛋白氧化(FPOP)与自上而下的质谱(MS)分析相结合,为探测蛋白质结构或蛋白质与其他生物分子(例如蛋白质和 DNA)的相互作用提供了一种替代分析方法。然而,随着研究分析物质量的增加,MS/MS 谱变得复杂,并且信号噪声比低。尽管如此,通过蛋白质同位素耗尽可以克服这些困难。因此,我们旨在使用蛋白质同位素耗尽通过自上而下的 MS 分析来分析 FPOP 氧化的样品。为此,我们制备了 FOXO4 DNA 结合域(FOXO4-DBD)的同位素自然(IN)和耗尽(ID)形式,并研究了在暴露于羟基自由基后,该复合物与双链 DNA、胰岛素反应元件(IRE)的蛋白质-DNA 相互作用界面。如通过比较天然和耗尽蛋白质的串联质谱所示,ID 形式增加了有用片段离子的信号噪声比,从而使序列覆盖率提高了 19%以上。片段离子检测的这种改进使我们能够在 ID 样品中检测到比 IN 样品多 22 个氧化残基。此外,在 ID 样品中检测到了较少见的修饰,包括酮和赖氨酸羰基化的形成。鉴于 ID 自上而下 MSMS 数据集的质量更高,这些结果提供了关于转录因子和 DNA 反应元件之间复合物形成的更详细信息。因此,我们的研究强调了同位素耗尽对定量自上而下蛋白质组学的益处。数据可通过 ProteomeXchange 获得,标识符为 PXD044447。