Rational Design of a Biocatalyst Based on Immobilized CALB onto Nanostructured SiO2
Abstract
:1. Introduction
2. Results and Discussion
2.1. Key Features of the Immobilization of CALB on Ns Silica: Maximum Dispersion Limit of Protein and Mechanism of Adsorption
2.2. Immobilization Performance and Activity–Structure Relationship of the Adsorption Process
2.3. Kinetic Resolution of rac-Ibuprofen: Catalytic Activity—Maximum Dispersion Limit Relationship
2.4. Lipase Co-Adsorption with Polyols onto Ns SiO2: Influence on the Catalytic Performance
2.5. Influence of the Temperature on the Catalytic Performance
2.6. Stability of CALB Immobilized on Ns SiO2: Influence of the Temperature and Storage
3. Materials and Methods
3.1. Materials
3.2. Raman and Infrared (DRIFTS) Spectroscopy Analysis
3.3. Immobilization of CALB onto SiO2: Kinetic of Adsorption
3.4. Isotherm of Adsorption: Maximum Dispersion Limit
3.5. SDS-PAGE Analysis
3.6. Hydrolysis of p-Nitrophenyl Dodecanoate
3.7. Enantioselective Esterification of rac-Ibuprofen
3.8. Stability under Thermal Stress and after Extended Storage
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Adsorption Model | Parameters | |
---|---|---|
Langmuir | QMAX (μmol/m2) | 0.036 ± 0.002 |
KL (mg/mL) | 5.95 | |
R2 | 0.91 | |
Σ2 | 6.89 | |
Freundlich | KF (μmol/m2) | 0.033 ± 0.002 |
nF | 3.00 | |
R2 | 0.87 | |
Σ2 | 10.99 | |
Hill | QMAX (μmol/m2) | 0.032 ± 0.007 |
KH | 0.2 | |
nH | 1.5 | |
R2 | 0.89 | |
Σ2 | 6.86 | |
GAB | Wm (μmol/m2) | 0.033 ± 0.002 |
C | 107.12 | |
k | 0.06 | |
R2 | 0.97 | |
Σ2 | 5.65 | |
Dubinin-Radushkevich | Xm (μmol/m2) | 0.028 ± 0.009 |
β | −2.22 × 10−8 | |
E (kJ/mol) | −4.74 | |
R2 | 0.94 | |
Σ2 | 0.02 |
Yield % | |||||
---|---|---|---|---|---|
Protein Solution | Protein Concentration (mg.mL−1) | Activity (µmol.min−1.mL−1) | Immobilized Protein | Residual Activity | |
Assay I | Starting | 1.91 ± 0.09 | 0.177 ± 0.004 | 61.7 | 79.7 |
equilibrium | 0.73 ± 0.03 | 0.036 ± 0.005 | |||
Assay II | Starting | 1.60 ± 0.07 | 0.118 ± 0.005 | 62.5 | 69.5 |
equilibrium | 0.6 ± 0.1 | 0.036 ± 0.003 |
Sample | Source of CALB | Glycerol–Sorbitol (% p/v) | Protein Density (µmol.m−2) | Specific Activity (µmol.min−1.mg−1) |
---|---|---|---|---|
A | pure | ------ | 0.021 ± 0.002 | 0.006 ± 0.001 |
B * | Crude extract | 3% a | 0.017 ± 0.002 | 0.219 ± 0.006 |
B | Crude extract | 3% a | 0.019 ± 0.002 | 0.194 ± 0.010 |
C | Crude extract | 6% b | 0.018 ± 0.002 | 0.189 ± 0.012 |
D | Crude extract | 9% c | 0.023 ± 0.001 | 0.232 ± 0.025 |
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Llerena Suster, C.R.; Toledo, M.V.; Matkovic, S.R.; Morcelle, S.R.; Briand, L.E. Rational Design of a Biocatalyst Based on Immobilized CALB onto Nanostructured SiO2. Catalysts 2023, 13, 625. https://doi.org/10.3390/catal13030625
Llerena Suster CR, Toledo MV, Matkovic SR, Morcelle SR, Briand LE. Rational Design of a Biocatalyst Based on Immobilized CALB onto Nanostructured SiO2. Catalysts. 2023; 13(3):625. https://doi.org/10.3390/catal13030625
Chicago/Turabian StyleLlerena Suster, Carlos R., María V. Toledo, Silvana R. Matkovic, Susana R. Morcelle, and Laura E. Briand. 2023. "Rational Design of a Biocatalyst Based on Immobilized CALB onto Nanostructured SiO2" Catalysts 13, no. 3: 625. https://doi.org/10.3390/catal13030625