Related Experiment Video
Updated: Jan 12, 2026

Sedimentation Equilibrium of a Small Oligomer-forming Membrane Protein: Effect of Histidine Protonation on Pentameric Stability
Published on: April 2, 2015
Influence of resin structure on the prediction of two-component protein adsorption behavior in anion exchange resins
Jürgen Beck1, Rainer Hahn1, Giorgio Carta2
1Institute of Bioprocess Science and Engineering, Department of Biotechnology and Food Science, BOKU Vienna, Austria.
Abstract:
Understanding the adsorption equilibria and kinetics of multicomponent mixtures is essential to developing and modeling separation processes. In our previous research, we demonstrated the significant impact of resin structure on the efficiency with which two components are separated in frontal chromatography. This study aims to predict the adsorption behavior of multicomponent binary protein mixtures using single-component data on anion exchange resins. Conalbumin (CA) and green fluorescent protein (GFP) were used as model proteins to study two resins with distinct structures: Q Sepharose FF and POROS 50 HQ. Q Sepharose FF has a homogeneous pore size distribution (rpore ∼ 30 nm), while POROS exhibits a bimodal distribution with macropores (rpore ∼ 200-500 nm) and micropores (rpore ∼ 20 nm). A pore diffusion model with a competitive Langmuir isotherm was used to predict binary adsorption behavior using single-component isotherm and batch uptake kinetics data. While this model accurately described adsorption on Q Sepharose FF, it failed to capture the reduced GFP binding capacity observed in frontal chromatography on POROS 50 HQ by a factor of 2. To address this, two alternative models were proposed: (1) a competitive bi-Langmuir isotherm assuming heterogeneous binding sites and (2) a reversible-irreversible binding model where micropore sites exhibit irreversible adsorption. The reversible-irreversible model provided the most accurate predictions for POROS 50 HQ, capturing both equilibrium and kinetic data with an average deviation below 15 %. These findings highlight the role of POROS's bimodal pore structure in reduced GFP capacity and demonstrate the need for advanced mechanistic models to predict multicomponent adsorption in complex systems.
More Related Videos
06:50Author Spotlight: A Computational Approach to Decipher Amino Acid Preferences in Multispecific Protein-Protein Interactions
Published on: January 26, 2024
09:43Study of Short Peptide Adsorption on Solution Dispersed Inorganic Nanoparticles Using Depletion Method
Published on: April 11, 2020
Related Concept Videos
Ion-Exchange Chromatography
Ion Exchange
Types Of Column Chromatography
Gel Filtration Chromatography
When the...
Analyte Adsorption and Distribution
Extraction: Effects of pH