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Impact of double cryogelation process on a macroporous dye-affinity hydrogel
Thi Hoai Thu Trinh1,2, Lei Ye1, Solmaz Hajizadeh1
1Department of Chemistry, Division of Pure and Applied Biochemistry, Lund University, Lund, Sweden.
Journal of Separation Science
|February 13, 2023
Summary
This study developed a robust double-layer cryogel for dye-affinity chromatography, enhancing mechanical stability while maintaining efficient protein adsorption and elution for complex mixtures.
Area of Science:
- Biomaterials Science
- Chromatography
- Chemical Engineering
Background:
- Cryogels offer high flow-through properties for complex mixtures but often lack mechanical strength.
- Improving cryogel stability is crucial for their application in separation technologies.
Purpose of the Study:
- To enhance the mechanical stability of cryogels for dye-affinity chromatography.
- To develop a double-layer cryogel with improved structural integrity and performance.
Main Methods:
- Fabrication of a poly(acrylamide-co-allyl glycidyl ether) double-layer cryogel at sub-zero temperatures.
- Immobilization of Cibacron Blue F3GA dye for affinity chromatography.
- Adsorption/elution studies using bovine serum albumin in batch and continuous modes.
Main Results:
- The double-layer cryogel exhibited a 7-fold increase in mechanical stability (144 kPa) compared to a single-layer cryogel.
- While batch binding capacity decreased, dynamic binding capacity improved significantly in the double-layer cryogel.
- Adsorption kinetics followed a pseudo-second-order model, and isotherms followed the Freundlich model.
- The cryogel columns demonstrated good regeneration, with no significant capacity loss after 10 cycles.
Conclusions:
- The double-layer cryogel design effectively enhances mechanical stability for chromatography applications.
- This improved cryogel is suitable for efficient separation of proteins from complex mixtures.
- The material shows promise for robust and reusable affinity chromatography systems.

