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Rapidly Alternating Transmission Mode Electron Transfer Dissociation and Collisional Activation for the Characterization of Polypeptide Ions

机译:快速交替的传输模式电子转移解离和碰撞激活用于表征多肽离子

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摘要

Cation transmission/electron transfer reagent anion storage mode electron transfer ion/ion reactions and beam-type collisional activation of the polypeptide ions are performed in rapid succession in the high pressure collision cell (Q2) of a quadrupole/time-of-flight tandem mass spectrometer (QqTOF), where the electron transfer reagent anions are accumulated. Duty cycles for both electron transfer dissociation (ETD) and collision-induced dissociation (CID) experiments are improved relative to ion trapping approaches since there are no discrete ion storage and reaction steps for ETD experiments and no discrete ion storage step and frequency tuning for CID experiments. For this technique, moderately high resolution and mass accuracy are also obtained due to mass analysis via the TOF analyzer. This relatively simple approach has been demonstrated with a triply charged tryptic peptide, a triply charged tryptic phosphopeptide, and a triply charged tryptic N-linked glycopeptide. For the tryptic peptide, the sequence is identified with more certainty than would be available from a single method alone due to the complementary information provided by these two dissociation methods. Because of the complementary information derived from both ETD and CID dissociation methods, peptide sequence and post-translational modification (PTM) sites for the phosphopeptide are identified. This combined ETD and CID approach is particularly useful for characterizing glycopeptides because ETD generates information about both peptide sequence and locations of the glycosylation sites while CID provides information about the glycan structure.
机译:在四极/飞行时间串联质量的高压碰撞池(Q2)中快速连续进行阳离子传输/电子转移试剂阴离子存储模式电子转移离子/离子反应和离子束的束型碰撞活化光谱仪(QqTOF),其中电子转移试剂阴离子被积累。相对于离子捕获方法,电子转移解离(ETD)和碰撞诱导解离(CID)实验的占空比都得到了改善,因为ETD实验没有离散的离子存储和反应步骤,CID没有离散的离子存储步骤和频率调整实验。对于这种技术,由于通过TOF分析仪进行质量分析,因此还可以获得中等程度的高分辨率和质量准确度。用三电荷的胰蛋白酶肽,三电荷的胰蛋白酶磷酸肽和三电荷的胰蛋白酶N-连接糖肽证明了这种相对简单的方法。对于胰蛋白酶肽,由于这两种解离方法提供的互补信息,其序列的确定性比单独使用单一方法的确定性更高。由于从ETD和CID解离方法中获得的补充信息,可以识别磷酸肽的肽序列和翻译后修饰(PTM)位点。这种组合的ETD和CID方法对于表征糖肽特别有用,因为ETD生成有关肽序列和糖基化位点位置的信息,而CID提供有关聚糖结构的信息。

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