Multi-modal applicability of a reversed-phase/weak-anion exchange material in reversed-phase, anion-exchange, ion-exclusion, hydrophilic interaction and hydrophobic interaction chromatography modes

被引:0
作者
Michael Lämmerhofer
Raquel Nogueira
Wolfgang Lindner
机构
[1] University of Vienna,Department of Analytical Chemistry, Faculty of Chemistry
来源
Analytical and Bioanalytical Chemistry | 2011年 / 400卷
关键词
Mixed-mode stationary phase; Reversed-phase/weak anion-exchange material; Hydrophilic interaction chromatography (HILIC); Hydrophobic interaction chromatography (HIC); Ion-exclusion chromatography;
D O I
暂无
中图分类号
学科分类号
摘要
We recently introduced a mixed-mode reversed-phase/weak anion-exchange type separation material based on silica particles which consisted of a hydrophobic alkyl strand with polar embedded groups (thioether and amide functionalities) and a terminal weak anion-exchange-type quinuclidine moiety. This stationary phase was designed to separate molecules by lipophilicity and charge differences and was mainly devised for peptide separations with hydroorganic reversed-phase type elution conditions. Herein, we demonstrate the extraordinary flexibility of this RP/WAX phase, in particular for peptide separations, by illustrating its applicability in various chromatographic modes. The column packed with this material can, depending on the solute character and employed elution conditions, exploit attractive or repulsive electrostatic interactions, and/or hydrophobic or hydrophilic interactions as retention and selectivity increments. As a consequence, the column can be operated in a reversed-phase mode (neutral compounds), anion-exchange mode (acidic compounds), ion-exclusion chromatography mode (cationic solutes), hydrophilic interaction chromatography mode (polar compounds), and hydrophobic interaction chromatography mode (e.g., hydrophobic peptides). Mixed-modes of these chromatographic retention principles may be materialized as well. This allows an exceptionally flexible adjustment of retention and selectivity by tuning experimental conditions. The distinct separation mechanisms will be outlined by selected examples of peptide separations in the different modes.
引用
收藏
页码:2517 / 2530
页数:13
相关论文
共 217 条
[21]  
Urban J(2009)A weak cation-exchange, reversed-phase mixed-mode HPLC column and its applications Am Lab (Shelton, CT, US) 41 28-29
[22]  
Skerikova V(2010)Aqueous normal phase retention of nucleotides on silica hydride-based columns: method development strategies for analytes relevant in clinical analysis J Sep Sci 33 930-938
[23]  
Jandera P(2011)Novel ultra stable silica-based stationary phases for reversed phase liquid chromatography—study of a hydrophobically assisted weak acid cation exchange phase J Chromatogr A 1218 763-777
[24]  
Kubickova R(1992)Mixed-mode hydrophilic and ionic interaction chromatography rivals reversed-phase liquid chromatography for the separation of peptides J Chromatogr 594 75-86
[25]  
Pospisilova M(2008)Mixed-mode hydrophilic interaction/cation-exchange chromatography (HILIC/CEX) of peptides and proteins J Sep Sci 31 2754-2773
[26]  
Liao JC(2008)Mixed-mode hydrophilic interaction/cation-exchange chromatography: separation of complex mixtures of peptides of varying charge and hydrophobicity J Sep Sci 31 1573-1584
[27]  
Vogt CR(2010)HILIC behavior of a reversed-phase/cation-exchange/anion-exchange trimode column J Sep Sci 33 779-786
[28]  
Bischoff R(2010)Mixed-mode ion-exchange polymeric sorbents: dual-phase materials that improve selectivity and capacity TrAC, Trends Anal Chem 29 765-779
[29]  
McLaughlin LW(1999)Comparison of the electroosmotic flow profiles and selectivity of stationary phases used in capillary electrochromatography J Chromatogr A 832 41-54
[30]  
Danielson ND(2009)Novel mixed-mode stationary phase for capillary electrochromatography Adv Chromatogr (Boca Raton, FL, US) 47 127-163