TY - JOUR
T1 - Advancing HIC method development
T2 - Retention-time modeling and tuning selectivity with ternary mobile-phase systems
AU - Ewonde Ewonde, Raphael
AU - Molenaar, Stef R.A.
AU - Broeckhoven, Ken
AU - Eeltink, Sebastiaan
N1 - Funding Information:
Support of this work by grants from the Research Foundation Flanders \u2013 FWO (grant number: G026522N and 30897864 ) is gratefully acknowledged. Dr. Shanhua Lin (Thermo Fisher Scientific) is gratefully acknowledged for providing column support. SM acknowledges the UNMATCHED project, which is supported by BASF, Envalior, and Nouryon, and receives funding from the Dutch Research Council (NWO) in the framework of the Innovation Fund for Chemistry (CHIPP Project 731.017.303) and from the Ministry of Economic Affairs in the framework of the \u201CPPS-toeslagregeling\u201D.
Publisher Copyright:
© 2024
PY - 2024/8/16
Y1 - 2024/8/16
N2 - The use of a ternary mobile-phase system comprising ammonium sulphate, sodium chloride, and phosphate buffer was explored to tune retention and enhance selectivity in hydrophobic interaction chromatography. The accuracy of the linear solvent-strength model to predict protein retention with the ternary mobile-phase system based on isocratic scouting runs is limited, as the extrapolated retention factor at aqueous buffer conditions (k0) cannot be reliably established. The Jandera retention model utilizing a salt concentration averaged retention factor (k¯0) in aqueous buffer for ternary systems overcomes this bottleneck. Gradient retention factors were derived based on isocratic scouting runs after numerical integration of the isocratic Jandera model, leading to retention-time prediction errors below 11 % for linear gradients. Furthermore, an analytical expression was formulated to predict HIC retention for both linear and segmented linear gradients, considering the linear solvent-strength (LSS) model within ternary salt systems, relying on a fixed k0. The approach involved conducting two gradient scouting runs for each of the two binary salt systems to determine model parameters. Retention-time prediction errors for linear gradients were below 12 % for lysozyme and 3 % for trypsinogen and α-chymotrypsinogen A. Finally, the analytical expression for a ternary mobile-phase system was used in combination with a genetic algorithm to tune the HIC selectivity. With an optimized segmented ternary gradient, a critical-pair separation for a mixture of 7 proteins was achieved within 15 min with retention-time prediction errors ranging between 0.7 and 15.7 %.
AB - The use of a ternary mobile-phase system comprising ammonium sulphate, sodium chloride, and phosphate buffer was explored to tune retention and enhance selectivity in hydrophobic interaction chromatography. The accuracy of the linear solvent-strength model to predict protein retention with the ternary mobile-phase system based on isocratic scouting runs is limited, as the extrapolated retention factor at aqueous buffer conditions (k0) cannot be reliably established. The Jandera retention model utilizing a salt concentration averaged retention factor (k¯0) in aqueous buffer for ternary systems overcomes this bottleneck. Gradient retention factors were derived based on isocratic scouting runs after numerical integration of the isocratic Jandera model, leading to retention-time prediction errors below 11 % for linear gradients. Furthermore, an analytical expression was formulated to predict HIC retention for both linear and segmented linear gradients, considering the linear solvent-strength (LSS) model within ternary salt systems, relying on a fixed k0. The approach involved conducting two gradient scouting runs for each of the two binary salt systems to determine model parameters. Retention-time prediction errors for linear gradients were below 12 % for lysozyme and 3 % for trypsinogen and α-chymotrypsinogen A. Finally, the analytical expression for a ternary mobile-phase system was used in combination with a genetic algorithm to tune the HIC selectivity. With an optimized segmented ternary gradient, a critical-pair separation for a mixture of 7 proteins was achieved within 15 min with retention-time prediction errors ranging between 0.7 and 15.7 %.
KW - Genetic algorithm
KW - Gradient prediction
KW - Hydrophobic interaction chromatography
KW - Protein analysis
UR - http://www.scopus.com/inward/record.url?scp=85197751622&partnerID=8YFLogxK
U2 - 10.1016/j.chroma.2024.465133
DO - 10.1016/j.chroma.2024.465133
M3 - Article
C2 - 38996515
AN - SCOPUS:85197751622
VL - 1730
JO - Journal of Chromatography. A
JF - Journal of Chromatography. A
SN - 0021-9673
M1 - 465133
ER -