Engineering of a Carbonic Anhydrase from Hydrogenimonas thermophila Through Fusion Tags and Surface Mutagenesis Enhances Solubility While Revealing Stability–Function Relationships
Journal article, 2026

Protein solubility can limit enzyme performance in industrial applications. This is the case for some carbonic anhydrases (CAs), key enzymes for CO2 capture and utilization. In this study, we investigated an α-class CA from the thermophilic bacterium Hydrogenimonas thermophila (HtCA), which was predominantly expressed as an insoluble protein in Escherichia coli. Surface analysis using Molecular Operating Environment (MOE) revealed extensive hydrophobic regions, suggesting a basis for its poor solubility. To improve solubility, three C-terminal fusion tags were evaluated (Gb1, ng3-NEXT, and T7B9). All tagged variants showed markedly increased soluble expression as determined by sodium dodecyl sulfate–polyacrylamide gel electrophoresis (SDS-PAGE) analysis. To reduce surface hydrophobicity, selected residues were substituted with charged amino acids. Most variants displayed improved solubility, and V136D showed enhanced thermostability, retaining 76% activity after exposure to 90 °C for an hour. However, the F177D variant completely lost all enzymatic activity, highlighting the importance of evaluating both solubility and catalytic function during protein engineering. Molecular dynamics simulations supported the experimental findings, revealing that thermostable variants exhibited reduced structural fluctuations and favorable free-energy landscapes, while the inactive F177D mutant sampled a broader conformational space and higher-energy conformations, consistent with decreased structural stability and loss of catalytic activity.

Hydrogenimonas thermophila

hydrothermal vent

protein solubility

mutagenesis

rational engineering

alpha carbonic anhydrase

thermostability

protein engineering

solubility tag

CO2 hydration

Author

Colleen Varaidzo Manyumwa

Technical University of Denmark (DTU)

C. Jers

Technical University of Denmark (DTU)

Ivan Mijakovic

Chalmers, Life Sciences, Systems and Synthetic Biology

Technical University of Denmark (DTU)

International Journal of Molecular Sciences

16616596 (ISSN) 14220067 (eISSN)

Vol. 27 16 7498

Subject Categories (SSIF 2025)

Molecular Biology

DOI

10.3390/ijms27167498

More information

Latest update

9/11/2026