首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Optimizing the peak capacity per unit time in one-dimensional and off-line two-dimensional liquid chromatography for the separation of complex peptide samples
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Optimizing the peak capacity per unit time in one-dimensional and off-line two-dimensional liquid chromatography for the separation of complex peptide samples

机译:优化一维和离线二维液相色谱仪中每单位时间的峰容量,以分离复杂的肽样品

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To obtain the best compromise between peak capacity and analysis time in one-dimensional and two-dimensional (2D) liquid chromatography (I-C). column technology and operating conditions were optimized. The effects of gradient time, flow rate. column temperature. and column length were investigated in one-dimensional reversed-phase (RP) gradient nano-LC, with the aim of maximizing the peak per unit time for peptide separations An off-line two-dimensional LC approach was developed using a micro-fractionation option of the autosampler, which allowed automatic fractionation of peptides after a first-dimension ion-exchange separation and re-injection of the fractions onto a second-dimension RP nano-LC column Under the applied conditions. which Included a preconcentration/desalting time of 5 min, and a column equilibration time of 12.5 min, the highest peak capacity per unit time in the 2D-LC mode was obtained when applying a short (10 mm) first-dimension gradient and second-dimension RP gradients of 20 min duration. For separations requiring a maximum peak capacity of 375. one-dimensional LC was found to be superior to the off-line strong cation-exchange/x/RPLC approach in terms of analysis time Although a peak capacity of 450 Could be obtained in one-dimensional LC when applying 120-min gradients on 500-mm long columns packed with 3-mu m particles, for separations requiring a peak capacity higher than 375 2D-LC experiments provide a higher peak capacity per unit time Finally, the potential of off-line 2D-LC coupled to tandem mass spectrometry detection is demonstrated with the analysis of a tryptic digest of a mixture of nine proteins and an Escherichia coil digest.
机译:为了在一维和二维(2D)液相色谱(I-C)中获得峰容量和分析时间之间的最佳折衷。优化了色谱柱技术和操作条件。梯度时间,流速的影响。柱温。在一维反相(RP)梯度纳米LC中研究了色谱柱和色谱柱的长度,目的是最大化肽段分离的每单位时间的峰。使用微分离选项开发了离线二维LC方法自动进样器的质谱图,可以在进行第一维离子交换分离后,将肽自动分馏,然后在应用条件下将这些组分重新注入第二维RP纳米LC色谱柱。其中包括5分钟的预浓缩/脱盐时间和12.5分钟的色谱柱平衡时间,当使用短(10 mm)第一维梯度和第二色谱峰时,在2D-LC模式下获得了单位时间的最高峰容量持续时间为20分钟的RP尺寸梯度。对于需要最大最大峰容量为375的分离,发现一维液相色谱在分析时间方面优于离线强阳离子交换/ x / RPLC方法,尽管在一个条件下可达到450的峰容量。尺寸LC在对填充有3μm颗粒的500 mm长色谱柱上进行120 min梯度洗脱时,对于要求峰容量高于375的分离,2D-LC实验提供了每单位时间更高的峰容量。通过分析九种蛋白质混合物的胰蛋白酶消化物和大肠埃希氏菌属消化物,证明了与串联质谱检测联用的2D-LC品系。

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