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Novel LC-MS~2 Product Dependent Parallel Data Acquisition Function and Data Analysis Workflow for Sequencing and Identification of Intact Glycopeptides

机译:新型LC-MS〜2产品相关的并行数据采集功能和数据分析工作流程,用于测序和鉴定完整糖肽

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摘要

Data dependent acquisition (DDA) of higher collision energy dissociation (HCD)-MS~2 followed by electron transfer dissociation (ETD)-MS~2 upon detection of glycan-specific oxonium is one of the better approaches in current LC-MS~2 analysis of intact glycopeptides. Although impressive numbers of glycopeptide identification by a direct database search have been reported, false positives remained high and difficult to determine. Even in cases when the peptide backbones were correctly identified, the exact glycan moieties were often erroneously assigned. Any attempt to fit the best glycosyl composition match by mass only is problematic particularly when the correct monoisotopic precursor cannot be determined unambiguously. Taking advantage of a new trihybrid Orbitrap configuration, we experimented with adding in a parallel ion trap collision induced dissociation (CID)-MS~2 data acquisition to the original HCD-product dependent (pd)-ETD function. We demonstrated the feasibility and advantage of identifying the peptide core ion directly from edited HCD-MS~2 data as an easy way to reduce false positives without compromising much sensitivity in intact glycopeptide positive spectrum matches. Importantly, the additional CID-MS~2 data allows one to validate the glycan assignment and provides insight into possible glycan modifications. Moreover, it is a viable alternative to deduce the glycopeptide backbone particularly in cases when the peptide backbone cannot be identified by ETD/HCD. The novel HCD-pd-CID/ETD workflow combines the best possible decision tree dependent MS~2 data acquisition modes currently available for glycoproteomics within a rapid Top Speed DDA duty cycle. Additional informatics can conceivably be developed to mine and integrate the rich information contained within for simultaneous N- and O-glycopeptide analysis.
机译:在检测到特定于聚糖的氧鎓后,更高的碰撞能量解离(HCD)-MS〜2继之以电子转移解离(ETD)-MS〜2的数据依赖采集(DDA)是当前LC-MS〜2更好的方法之一完整糖肽的分析。尽管已经报道了通过直接数据库搜索可识别的糖肽的惊人数目,但是假阳性仍然很高并且难以确定。即使在正确识别肽主链的情况下,准确的聚糖部分也常常被错误地分配。使质量最佳匹配的最佳糖基组成的任何尝试都是有问题的,特别是当不能明确确定正确的单同位素前体时。利用新的三杂Orbitrap配置,我们尝试了将平行离子阱碰撞诱导解离(CID)-MS〜2数据采集添加到原始HCD产物依赖性(pd)-ETD功能中。我们证明了直接从编辑的HCD-MS〜2数据中鉴定肽核心离子的可行性和优势,这是减少假阳性而不损害完整糖肽阳性光谱匹配灵敏度的简便方法。重要的是,附加的CID-MS〜2数据使人们能够验证聚糖的分配,并深入了解可能的聚糖修饰。此外,推导糖肽主链是一种可行的替代方法,特别是在无法通过ETD / HCD鉴定肽主链的情况下。新颖的HCD-pd-CID / ETD工作流程结合了目前在快速Top Speed DDA占空比内可用于糖蛋白组学的最佳决策树相关MS〜2数据采集模式。可以想象,可以开发其他信息学来挖掘和整合其中包含的丰富信息,以便同时进行N和O糖肽分析。

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