Kang Dukjin, Nam Hyungwook, Kim Yu-Sam, Moon Myeong Hee
Department of Chemistry, Yonsei University, Seoul 120-749, South Korea.
J Chromatogr A. 2005 Apr 8;1070(1-2):193-200. doi: 10.1016/j.chroma.2005.02.058.
A dual-purpose sample-trapping column is introduced for the capacity enhancement of proteome analysis in on-line two-dimensional nanoflow liquid chromatography (strong cation-exchange chromatography followed by reversed-phase liquid chromatography) and tandem mass spectrometry. A home-made dual trap is prepared by sequentially packing C18 reversed-phase (RP) particles and SCX resin in a silica capillary tubing (1.5 cm x 200 microm I.D. for SCX, 0.7 cm x 200 microm for RP) ended with a home-made frit and is connected to a nanoflow column having a pulled tip treated with an end frit. Without having a separate fraction collection and concentration process, digested peptide mixtures were loaded directly in the SCX part of the dual trap, and the SCX separation of peptides was performed with a salt step elution initiated by injecting only 8 microL of NH4HCO3 solution from the autosampler to the dual trap. The fractionated peptides at each salt step were directly transferred to the RP trap packed right next to the SCX part for desalting, and a nanoflow LC-MS-MS run was followed. During the sample loading-SCX fractionation-desalting, flow direction was set to bypass the analytical column to prevent contamination. The entire 2D-LC separation and MS-MS analysis were automated. Evaluation of the technique was made with an injection of 15 microg peptide mixtures from human Jurkat T-cell proteome, and the total seven salt step cycles followed by each RPLC run resulted in an identification of 681 proteins.
介绍了一种用于在线二维纳流液相色谱(强阳离子交换色谱随后反相液相色谱)和串联质谱中增强蛋白质组分析能力的两用样品捕集柱。通过将C18反相(RP)颗粒和SCX树脂依次填充到一根硅胶毛细管(SCX部分为1.5 cm×200μm内径,RP部分为0.7 cm×200μm)中,并在末端接上自制的烧结滤片,制备了一种自制的双捕集器,该双捕集器连接到一根带有经末端烧结滤片处理的拉尖的纳流柱上。无需单独的馏分收集和浓缩过程,将消化后的肽混合物直接加载到双捕集器的SCX部分,通过仅从自动进样器向双捕集器注入8μL NH4HCO3溶液启动的盐梯度洗脱进行肽的SCX分离。每个盐梯度下分离得到的肽直接转移到紧邻SCX部分填充的RP捕集器中进行脱盐,随后进行纳流LC-MS-MS分析。在样品加载-SCX分离-脱盐过程中,将流动方向设置为绕过分析柱以防止污染。整个二维液相色谱分离和质谱-质谱分析均实现自动化。通过注入来自人Jurkat T细胞蛋白质组的15μg肽混合物对该技术进行评估,每个反相液相色谱运行后进行的总共七个盐梯度循环导致鉴定出681种蛋白质。