Theodore R. Keppel, Yu Zhou, John R. Barr and Dongxia Wang
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引用次数: 0
摘要
研究人员需要增强的分析技术来分析和表征组织和细胞蛋白质组在研究纳米级的肽样品。为了满足这一需求,纳米流液相色谱(nLC)和质谱(MS)的工作重点是方法开发,同时改进了新的细胞分选和分离仪器。在这篇文章中,我们描述了在肽和蛋白质鉴定使用简单,成本效益的变化,以共同的质谱法程序的改进。我们专注于使用Orbitrap仪器分析1纳克或更少的肽物质的程序。我们发现,当在数据依赖的选择中应用较低的前体强度阈值时,蛋白质鉴定增加了40%以上。我们还演示了使用含有n-十二烷基-β- d -麦芽糖苷(DDM)的样品稀释液识别后期洗脱肽的改进。我们还发现,较低的nLC流量可以使蛋白质鉴定提高20%以上。最后,我们报告了当在单一方法中施加多个高场不对称波形离子迁移率谱(FAIMS)补偿电压(CV)时,肽鉴定的效率提高了18%。这些简单的修改为研究人员提供了在非常有限或低浓度样品中改进肽检测的选择。
Refining nanoflow LC and orbitrap MS data acquisition parameters for pico- and nanogram scale proteomics
Researchers need enhanced analytical techniques to profile and characterize tissue and cellular proteomes in studying nanogram scale peptide samples. To meet this demand, nanoflow liquid chromatography (nLC) and mass spectrometry (MS) work has focused on method development, while improvements are made in new cell sorting and isolation instrumentation. In this article, we describe improvements in peptide and protein identifications using simple, cost-effective changes to common mass spectrometry procedures. We focused on procedures that used an Orbitrap instrument to analyze 1 nanogram of peptide material or less. We found protein identifications increased over 40% when applying lowered precursor intensity thresholds in data-dependent selection. We also demonstrate improvements in identifying late-eluting peptides using sample diluents containing n-dodecyl-β-D-maltoside (DDM). We also show lower nLC flow rates can enhance protein identifications over 20%. Finally, we report improvements of 18% in peptide identifications when multiple high-field asymmetric waveform ion mobility spectrometry (FAIMS) compensation voltages (CV) are applied within a single method. These simple modifications provide researchers with options to improve peptide detection in very limited or low concentration samples.