Proteome-wide Detection and Quantitative Analysis of Irreversible Cysteine Oxidation Using Long Column UPLC-pSRM

被引:24
|
作者
Lee, Chia-Fang [1 ]
Paull, Tanya T. [2 ,3 ,4 ]
Person, Maria D. [1 ]
机构
[1] Univ Texas Austin, Coll Pharm, Prote Facil, Austin, TX 78712 USA
[2] Univ Texas Austin, Howard Hughes Med Inst, Austin, TX 78712 USA
[3] Univ Texas Austin, Dept Mol Genet & Microbiol, Austin, TX 78712 USA
[4] Univ Texas Austin, Inst Cellular & Mol Biol, Austin, TX 78712 USA
关键词
cysteine oxidation; UPLC; pSRM; long column; label-free quantitation; Skyline; MSI filtering; MASS-SPECTROMETRY; POSTTRANSLATIONAL MODIFICATIONS; HYDROGEN-PEROXIDE; SULFINIC ACID; DNA-DAMAGE; DJ-1; IDENTIFICATION; PEROXIREDOXINS; PEPTIDES; SKYLINE;
D O I
10.1021/pr400201d
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Reactive oxygen species (ROS) play an important role in normal biological functions and pathological processes. ROS is one of the driving forces for oxidizing proteins, especially on cysteine thiols. The labile, transient, and dynamic nature of oxidative modifications poses enormous technical challenges for both accurate modification site determination and quantitation of cysteine thiols. The present study describes a mass spectrometry-based approach that allows effective discovery and quantification of irreversible cysteine modifications. The utilization of a long reverse phase column provides high-resolution chromatography to separate different forms of modified cysteine thiols from protein complexes or cell lysates. This Fourier transform mass spectrometry (FT-MS) approach enabled detection and quantitation of ataxia telangiectasia mutated (ATM) complex cysteine sulfoxidation states using Skyline MS1 filtering. When we applied the long column ultra high pressure liquid chromatography (UPLC)-MS/MS analysis, 61 and 44 peptides from cell lysates and cells were identified with cysteine modifications in response to in vitro and in vivo H2O2 oxidation, respectively. Long column ultra high pressure liquid chromatography pseudo selected reaction monitoring (UPLC-pSRM) was then developed to monitor the oxidative level of cysteine thiols in cell lysate under varying concentrations of H2O2 treatment. From UPLC-pSRM analysis, the dynamic conversion of sulfinic (S-O2H) and sulfonic acid (S-O3H) was observed within nucleoside diphosphate ldnase (Nm23-H1) and heat shock 70 kDa protein 8 (Hsc70). These methods are suitable for proteome-wide studies, providing a highly sensitive, straightforward approach to identify proteins containing redox-sensitive cysteine thiols in biological systems.
引用
收藏
页码:4302 / 4315
页数:14
相关论文
共 6 条
  • [1] Proteome-Wide Survey of Cysteine Oxidation by Using a Norbornene Probe
    Alcock, Lisa J.
    Langini, Maike
    Stuehler, Kai
    Remke, Marc
    Perkins, Michael, V
    Bernardes, Goncalo J. L.
    Chalker, Justin M.
    CHEMBIOCHEM, 2020, 21 (09) : 1329 - 1334
  • [2] Proteome-wide analysis of cysteine oxidation reveals metabolic sensitivity to redox stress
    Gottlieb, E.
    FEBS JOURNAL, 2017, 284 : 39 - 39
  • [3] Proteome-wide analysis of cysteine oxidation reveals metabolic sensitivity to redox stress
    van der Reest, Jiska
    Lilla, Sergio
    Zheng, Liang
    Zanivan, Sara
    Gottlieb, Eyal
    NATURE COMMUNICATIONS, 2018, 9
  • [4] Proteome-wide analysis of cysteine oxidation reveals metabolic sensitivity to redox stress
    Jiska van der Reest
    Sergio Lilla
    Liang Zheng
    Sara Zanivan
    Eyal Gottlieb
    Nature Communications, 9
  • [5] Identifying cysteine residues susceptible to oxidation by photoactivatable atomic oxygen precursors using a proteome-wide analysis
    Isor, Ankita
    Chartier, Benjamin, V
    Abo, Masahiro
    Currens, Emily R.
    Weerapana, Eranthie
    McCulla, Ryan D.
    RSC CHEMICAL BIOLOGY, 2021, 2 (02): : 577 - 591
  • [6] Proteome-wide quantitative analysis of redox cysteine availability in the Drosophila melanogaster eye reveals oxidation of phototransduction machinery during blue light exposure and age
    Stanhope, Sarah C.
    Brandwine-Shemmer, Tal
    Blum, Hannah R.
    Doud, Emma H.
    Jannasch, Amber
    Mosley, Amber L.
    Minke, Baruch
    Weake, Vikki M.
    REDOX BIOLOGY, 2023, 63