Peptide collision cross sections of 22 post-translational modifications

被引:4
|
作者
Will, Andreas [1 ]
Oliinyk, Denys [1 ]
Bleiholder, Christian [2 ]
Meier, Florian [1 ]
机构
[1] Jena Univ Hosp, Funct Prote, Klinikum 1, D-07747 Jena, Germany
[2] Florida State Univ, Dept Chem & Biochem, Tallahassee, FL 32304 USA
关键词
Post-translational modifications; PTM; Ion mobility; TIMS; Collision cross section; CCS; ION MOBILITY SPECTROMETRY; INTRINSIC SIZE PARAMETERS; POTENTIAL FUNCTIONS; IDENTIFICATION; GLYCOPEPTIDES; SEPARATION; PROTEOMICS; PROTEINS; QUANTUM; PASEF;
D O I
10.1007/s00216-023-04957-4
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Recent advances have rekindled the interest in ion mobility as an additional dimension of separation in mass spectrometry (MS)-based proteomics. Ion mobility separates ions according to their size and shape in the gas phase. Here, we set out to investigate the effect of 22 different post-translational modifications (PTMs) on the collision cross section (CCS) of peptides. In total, we analyzed similar to 4300 pairs of matching modified and unmodified peptide ion species by trapped ion mobility spectrometry (TIMS). Linear alignment based on spike-in reference peptides resulted in highly reproducible CCS values with a median coefficient of variation of 0.26%. On a global level, we observed a redistribution in the m/z vs. ion mobility space for modified peptides upon changes in their charge state. Pairwise comparison between modified and unmodified peptides of the same charge state revealed median shifts in CCS between -1.4% (arginine citrullination) and +4.5% (O-GlcNAcylation). In general, increasing modified peptide masses were correlated with higher CCS values, in particular within homologous PTM series. However, investigating the ion populations in more detail, we found that the change in CCS can vary substantially for a given PTM and is partially correlated with the gas phase structure of its unmodified counterpart. In conclusion, our study shows PTM- and sequence-specific effects on the cross section of peptides, which could be further leveraged for proteome-wide PTM analysis.
引用
收藏
页码:6633 / 6645
页数:13
相关论文
共 50 条
  • [31] Post-translational protein modifications in schizophrenia
    Toni M. Mueller
    James H. Meador-Woodruff
    npj Schizophrenia, 6
  • [32] Sirtuin Oxidative Post-translational Modifications
    Kalous, Kelsey S.
    Wynia-Smith, Sarah L.
    Smith, Brian C.
    FRONTIERS IN PHYSIOLOGY, 2021, 12
  • [33] Post-translational modifications of nuclear sirtuins
    Kaiqiang Zhao
    Zhongjun Zhou
    Genome Instability & Disease, 2020, 1 (1) : 34 - 45
  • [34] Proteomic analysis of post-translational modifications
    Mann, M
    Jensen, ON
    NATURE BIOTECHNOLOGY, 2003, 21 (03) : 255 - 261
  • [35] Orchestrating the proteome with post-translational modifications
    Spoel, Steven H.
    JOURNAL OF EXPERIMENTAL BOTANY, 2018, 69 (19) : 4499 - 4503
  • [36] Dynamic post-translational modifications in obesity
    Yang, Hong
    Yang, Kun
    Gu, Huihui
    Sun, Chao
    JOURNAL OF CELLULAR AND MOLECULAR MEDICINE, 2020, 24 (03) : 2384 - 2387
  • [37] Post-translational modifications and their implications in cancer
    Dutta, Hashnu
    Jain, Nishant
    FRONTIERS IN ONCOLOGY, 2023, 13
  • [38] Editorial: Bacterial Post-translational Modifications
    Carabetta, Valerie J. J.
    Hardouin, Julie
    FRONTIERS IN MICROBIOLOGY, 2022, 13
  • [39] Post-translational modifications in signal integration
    Yonathan Lissanu Deribe
    Tony Pawson
    Ivan Dikic
    Nature Structural & Molecular Biology, 2010, 17 : 666 - 672
  • [40] Post-translational modifications on the retinoblastoma protein
    Zhou, Linbin
    Ng, Danny Siu-Chun
    Yam, Jason C.
    Chen, Li Jia
    Tham, Clement C.
    Pang, Chi Pui
    Chu, Wai Kit
    JOURNAL OF BIOMEDICAL SCIENCE, 2022, 29 (01)