Department of Analytical Sciences, Cellzome AG, Heidelberg, Germany.
J Am Soc Mass Spectrom. 2010 Oct;21(10):1668-79. doi: 10.1016/j.jasms.2010.01.012. Epub 2010 Jan 25.
Quantitative mass spectrometry-based proteomic assays often suffer from a lack of robustness and reproducibility. We here describe a targeted mass spectrometric data acquisition strategy for affinity enriched subproteomes-in our case the kinome-that enables a substantially improved reproducibility of detection, and improved quantification via isobaric tags. Inclusion mass lists containing m/z, charge state, and retention time were created based on a set of 80 shotgun-type experiments performed under identical experimental conditions. For each target protein, peptides were selected according to their frequency of observation and isobaric tag for relative and absolute quantitation (iTRAQ) reporter ion quality. Retention times of selected peptides were aligned using similarity driven pairwise alignment strategy yielding <1 min standard deviation for 4 h gradients. Multiple fragmentation of the same peptides resulted in better statistics and more precise reporter ion based quantification without any loss in coverage. Overall, 24% more target proteins were quantified using the targeted data acquisition approach, and precision of quantification improved by >1.5-fold. We also show that a combination of higher energy collisional dissociation (HCD) with collisional induced dissociation (CID) outperformed pulsed-Q-dissociation (PQD) on the OrbitrapXL. With the CID/HCD based targeted data acquisition approach 10% more quantifiable target proteins were identified and a 2-fold increase in quantification precision was achieved. We have observed excellent reproducibility between different instruments, underlining the robustness of the approach.
基于定量质谱的蛋白质组学分析方法通常缺乏稳健性和重现性。我们在这里描述了一种针对亲和富集亚蛋白质组(在我们的例子中是激酶组)的靶向质谱数据采集策略,该策略可显著提高检测的重现性,并通过同量异位标记进行改进的定量。基于在相同实验条件下进行的 80 次鸟枪法实验,创建了包含 m/z、电荷状态和保留时间的包含质量列表。对于每个靶蛋白,根据其观察频率和相对和绝对定量(iTRAQ)报告离子质量的同量异位标记选择肽。使用相似性驱动的成对对齐策略对齐选定肽的保留时间,对于 4 h 梯度,标准偏差<1 min。相同肽的多次碎裂可获得更好的统计数据和更精确的基于报告离子的定量,而不会损失任何覆盖度。总体而言,使用靶向数据采集方法可定量更多的靶蛋白(24%),定量精度提高了>1.5 倍。我们还表明,在 OrbitrapXL 上,高能碰撞解离(HCD)与碰撞诱导解离(CID)的组合优于脉冲 Q 解离(PQD)。使用 CID/HCD 基于靶向数据采集方法可鉴定出 10%更多可定量的靶蛋白,并实现定量精度提高 2 倍。我们已经观察到不同仪器之间具有出色的重现性,突出了该方法的稳健性。