Wang Hang, Sun Shengnan, Zhang Yi, Chen Si, Liu Ping, Liu Bin
Instrumental Analysis Center, Shanghai Jiao Tong University, Dongchuan Road 800, Shanghai 200240, PR China.
Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Zuchongzhi Road 555, 201203, PR China.
J Chromatogr B Analyt Technol Biomed Life Sci. 2015 Jan 1;974:90-5. doi: 10.1016/j.jchromb.2014.10.031. Epub 2014 Nov 4.
Liquid chromatography coupled to tandem mass spectrometry (LC/MS/MS) and first-dimensional fractionation is widely used for reducing sample complexity in large-scale proteomic profiling experiments. However, the limited number of proteins identified and the relatively long running time are a barrier to the successful application of this approach. In this study, off-line high pH reversed-phase fractionation (RPF) was combined with nano-LC-MS/MS in order to develop an improved method for global proteomic profiling of different cell lines. In the first dimensional reverse phase HPLC separation, 300 μg of digested cell protein was separated into 78 fractions under high pH conditions and condensed into 26 fractions for the second nano-LC-MS/MS analysis at low pH. The chromatographic conditions for the first and second steps were optimized, and the accuracy and reproducibility of protein quantification were investigated with an average Pearson correlation coefficient of 0.94. The method was then applied in the identification of proteins in six common cell lines (DMS, MFM, HepG2, U2OS, 293T and yeast), which resulted in identification of 7300-8500 and 8956 proteins in heavy/light labeled and label-free cell samples, respectively, in 1.5 days. The performance of the developed method was compared with isoelectric focusing (IEF)-nano-LC-MS/MS and the previously reported method; and off-line high pH RPF-nano-LC-MS/MS proved advantageous in terms of the number of proteins identified and the analytical time needed to achieve a successful global proteomic profiling outcome. The RPF-nano-LC-MS/MS method identified more proteins from low abundance (150 μg) samples with an average sequence coverage for each cell line of 23.4-35.1%. RPF-nano-LC-MS/MS may therefore be an efficient alternative tool for achieving improved proteomic coverage of multiple cell lines.
液相色谱-串联质谱联用(LC/MS/MS)和一维分级分离被广泛用于大规模蛋白质组分析实验中降低样品复杂性。然而,鉴定出的蛋白质数量有限以及运行时间相对较长是该方法成功应用的障碍。在本研究中,离线高pH反相分级分离(RPF)与纳升液相色谱-质谱联用相结合,以开发一种用于不同细胞系全蛋白质组分析的改进方法。在一维反相高效液相色谱分离中,300μg消化后的细胞蛋白在高pH条件下被分离成78个级分,并浓缩成26个级分用于低pH下的第二次纳升液相色谱-质谱联用分析。对第一步和第二步的色谱条件进行了优化,并研究了蛋白质定量的准确性和重现性,平均皮尔逊相关系数为0.94。然后将该方法应用于六种常见细胞系(DMS、MFM、HepG2、U2OS、293T和酵母)的蛋白质鉴定,在1.5天内分别在重/轻标记和无标记细胞样品中鉴定出7300 - 8500种和8956种蛋白质。将所开发方法的性能与等电聚焦(IEF)-纳升液相色谱-质谱联用和先前报道的方法进行了比较;离线高pH RPF-纳升液相色谱-质谱联用在鉴定出的蛋白质数量和实现成功的全蛋白质组分析结果所需的分析时间方面被证明具有优势。RPF-纳升液相色谱-质谱联用方法从低丰度(150μg)样品中鉴定出更多蛋白质,每个细胞系的平均序列覆盖率为23.4 - 35.1%。因此,RPF-纳升液相色谱-质谱联用可能是一种有效的替代工具,可用于提高多个细胞系的蛋白质组覆盖率。