利用高能碰撞解离提高糖肽分析的效率——精确的质量产物依赖电子转移解离。

International journal of proteomics Pub Date : 2012-01-01 Epub Date: 2012-05-30 DOI:10.1155/2012/560391
Julian Saba, Sucharita Dutta, Eric Hemenway, Rosa Viner
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引用次数: 118

摘要

目前,聚糖作为潜在的生物标志物或治疗蛋白的翻译后修饰(PTMs)正受到科学界的关注。然而,糖蛋白和糖肽的结构表征在分析上仍然具有挑战性。在这里,我们报告了在混合线性离子阱-轨道阱质谱仪上实现一种新的捕获策略,称为高能碰撞解离-精确质量产品依赖电子转移解离(HCD-PD-ETD)。这种获取策略以智能的方式使用ETD和HCD的互补片段进行糖肽分析。此外,该方法最大限度地减少了优化仪器参数的用户输入,并能够直接检测糖肽。只有当MS/MS HCD检测到糖氧离子时,才能获得ETD光谱。这种方法的优点是简化了数据分析,提高了动态范围和占空比。在这里,我们介绍了HCD- pd -ETD相对于传统交替HCD/ETD的好处,该训练器包含12种蛋白质混合物,其中包括两种糖蛋白:人血清转铁蛋白,卵清蛋白和另外两种污染物:牛α - 1酸性糖蛋白(bAGP)和牛胎蛋白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Increasing the productivity of glycopeptides analysis by using higher-energy collision dissociation-accurate mass-product-dependent electron transfer dissociation.

Increasing the productivity of glycopeptides analysis by using higher-energy collision dissociation-accurate mass-product-dependent electron transfer dissociation.

Increasing the productivity of glycopeptides analysis by using higher-energy collision dissociation-accurate mass-product-dependent electron transfer dissociation.

Increasing the productivity of glycopeptides analysis by using higher-energy collision dissociation-accurate mass-product-dependent electron transfer dissociation.

Currently, glycans are attracting attention from the scientific community as potential biomarkers or as posttranslational modifications (PTMs) of therapeutic proteins. However, structural characterization of glycoproteins and glycopeptides remains analytically challenging. Here, we report on the implementation of a novel acquisition strategy termed higher-energy collision dissociation-accurate mass-product-dependent electron transfer dissociation (HCD-PD-ETD) on a hybrid linear ion trap-orbitrap mass spectrometer. This acquisition strategy uses the complementary fragmentations of ETD and HCD for glycopeptides analysis in an intelligent fashion. Furthermore, the approach minimizes user input for optimizing instrumental parameters and enables straightforward detection of glycopeptides. ETD spectra are only acquired when glycan oxonium ions from MS/MS HCD are detected. The advantage of this approach is that it streamlines data analysis and improves dynamic range and duty cycle. Here, we present the benefits of HCD-PD-ETD relative to the traditional alternating HCD/ETD for a trainer set containing twelve-protein mixture with two glycoproteins: human serotransferrin, ovalbumin and contaminations of two other: bovine alpha 1 acid glycoprotein (bAGP) and bovine fetuin.

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