首页> 外文期刊>Analytical chemistry >Combining Higher-Energy Collision Dissociation and Electron-Transfer/Higher-Energy Collision Dissociation Fragmentation in a Product-Dependent Manner Confidently Assigns Proteomewide ADP-Ribose Acceptor Sites
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Combining Higher-Energy Collision Dissociation and Electron-Transfer/Higher-Energy Collision Dissociation Fragmentation in a Product-Dependent Manner Confidently Assigns Proteomewide ADP-Ribose Acceptor Sites

机译:将更高能量碰撞解离和电子传递/更高能量碰撞解离碎片以产物依赖性方式自信地分配蛋白质杂物ADP-核糖受体位点

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摘要

Protein adenosine diphosphate (ADP)-ribosylation is a physiologically and pathologically important post-translational modification. Recent technological advances have improved analysis of this complex modification and have led to the discovery of hundreds of ADP-ribosylated proteins in both cultured cells and mouse tissues. Nevertheless, accurate assignment of the ADP-ribose acceptor site(s) within the modified proteins identified has remained a challenging task. This is mainly due to poor fragmentation of modified peptides. Here, using an Orbitrap Fusion Tribrid mass spectrometer, we present an optimized methodology that not only drastically improves the overall localization scores for ADP-ribosylation acceptor sites but also boosts ADP-ribosylated peptide identifications. First, we systematically compared the efficacy of higher-energy collision dissociation (HCD), electron-transfer dissociation with supplemental collisional activation (ETcaD), and electron-transfer/higher-energy collision dissociation (EThcD) fragmentation methods when determining ADP-ribose acceptor sites within complex cellular samples. We then tested the combination of HCD and EThcD fragmentation, which were employed in a product-dependent manner, and the unique fragmentation properties of the ADP-ribose moiety were used to trigger targeted fragmentation of only the modified peptides. The best results were obtained with a workflow that included initial fast, high-energy HCD (Orbitrap, FT) scans, which produced intense ADP-ribose fragmentation ions. These potentially ADP-ribosylated precursors were then selected and analyzed via subsequent high-resolution HCD and EThcD fragmentation. Using these resulting high-quality spectra, we identified a xxxxxxKSxxxxx modification motif where lysine can serve as an ADP-ribose acceptor site. Due to the appearance of serine within this motif and its close presence to the lysine, further analysis revealed that serine serves as a new ADP-ribose acceptor site across the proteome.
机译:蛋白质腺苷二磷酸(ADP) - 纤维质化是在生理学上和病理上重要的翻译后改性。最近的技术进步改善了对这种复杂的改性的分析,并导致了在两种培养的细胞和小鼠组织中发现了数百种ADP-核糖基化蛋白。然而,所识别的改性蛋白质内的ADP核糖受体部位的准确分配仍然是一个具有挑战性的任务。这主要是由于改性肽的不良破碎物。这里,使用Orbitrap Fusion Tribriat质谱仪,我们提出了一种优化的方法,其不仅大大改善了ADP-核糖基化受体位点的总体定位评分,而且还提高了ADP-核糖基化肽鉴定。首先,系统地比较高能量碰撞解离(HCD),电子转移解离与补充局部激活(ETCAD)的功效,电子转移/更高能量碰撞解离(ethCD)碎片方法在确定ADP-核糖受体时复杂细胞样品中的遗址。然后,我们测试了HCD和醚碎片的组合,其以产物依赖性方式使用,并且使用ADP-核糖部分的独特碎片性质来触发仅改性肽的靶向碎裂。通过包括初始快速,高能量HCD(Orbitrap,Ft)扫描的工作流程获得了最佳结果,其产生了浓度的ADP-核糖碎片离子。然后通过随后的高分辨率HCD和乙基碎裂选择这些可能的ADP-核糖基化前体并分析。使用这些产生的高质量光谱,我们鉴定了XXXXXXKSXXXXX修改基序,其中赖氨酸可以用作ADP核糖受体部位。由于该基序内的丝氨酸的出现及其在赖氨酸的紧密存在,进一步的分析显示,丝氨酸用作蛋白质组的新的ADP核糖受体部位。

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  • 来源
    《Analytical chemistry》 |2017年第3期|共8页
  • 作者单位

    Univ Zurich Dept Mol Mech Dis CH-8057 Zurich Switzerland;

    Univ Zurich Dept Mol Mech Dis CH-8057 Zurich Switzerland;

    Univ Zurich ETH Zurich Funct Genom Ctr Zurich CH-8057 Zurich Switzerland;

    Univ Zurich ETH Zurich Funct Genom Ctr Zurich CH-8057 Zurich Switzerland;

    Univ Zurich Dept Mol Mech Dis CH-8057 Zurich Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

  • 入库时间 2022-08-20 16:39:55

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