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Updated: May 10, 2026

The Importance of Correct Protein Concentration for Kinetics and Affinity Determination in Structure-function Analysis
Published on: March 17, 2010
Serine protease-viscoelastic polysaccharide interaction in inorganic CaCO3: Enhanced thermal stability for efficient
Soyoon Baek1, Chan Hee Lee2, Dain Kim3
1R&D Complex, Kolmar Korea, Seoul, Republic of Korea; Department of Cosmetics Engineering, Konkuk University, Seoul, Republic of Korea.
Abstract:
Efficient enzyme particulation is essential for advancing enzyme applications across the food, cosmetic, and pharmaceutical industries. This study introduces a novel enzyme immobilization strategy utilizing mesoporous calcium carbonate (CaCO3) that incorporates viscoelastic polysaccharides to improve Bacillus licheniformis protease stability and reusability. An in situ biomineralization method was employed, where CaCO3 was synthesized while simultaneously encapsulating both the enzyme and guar gum in a water-based mixed-solvent system. Immobilization via protease-guar gum interactions significantly enhanced functional properties. Notably, guar gum increased enzymatic activity 3.39-fold (p < 0.01) and imparted thermal resistance during vacuum drying at 40-70 °C. The guar gum-protease-CaCO3 system showed 2.04-fold higher residual activity at 40 °C compared to the guar gum-free system. Scanning electron microscopy (SEM), X-ray diffraction (XRD), and Brunauer-Emmett-Teller (BET) analysis confirmed robust enzyme-matrix integration. The immobilized protease retained 45 % of its initial activity after 45 days and 70 % after 10 reuse cycles. Guar gum further enhanced storage stability by 8 % and reusability by 10 %. This is the first demonstration of a synergistic protease-polysaccharide system embedded within inorganic CaCO3, providing a durable, thermally stable platform for cosmetic enzyme formulations, functional food biocatalysts, and pharmaceutical intermediates, though validation in complex industrial matrices is needed.

