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Improving the activity and thermostability of GH2 β‐glucuronidases via domain reassembly
- Source :
- Biotechnology and Bioengineering. 118:1962-1972
- Publication Year :
- 2021
- Publisher :
- Wiley, 2021.
-
Abstract
- Glycoside hydrolase family 2 (GH2) enzymes are generally composed of three domains: TIM-barrel domain (TIM), immunoglobulin-like β-sandwich domain (ISD), and sugar-binding domain (SBD). The combination of these three domains yields multiple structural combinations with different properties. Theoretically, the drawbacks of a given GH2 fold may be circumvented by efficiently reassembling the three domains. However, very few successful cases have been reported. In this study, we used six GH2 β-glucuronidases (GUSs) from bacteria, fungi, or humans as model enzymes and constructed a series of mutants by reassembling the domains from different GUSs. The mutants PGUS-At, GUS-PAA, and GUS-PAP, with reassembled domains from fungal GUSs, showed improved expression levels, activity, and thermostability, respectively. Specifically, compared to the parental enzyme, the mutant PGUS-At displayed 3.8 times higher expression, the mutant GUS-PAA displayed 1.0 time higher catalytic efficiency (kcat /Km ), and the mutant GUS-PAP displayed 7.5 times higher thermostability at 65°C. Furthermore, two-hybrid mutants, GUS-AEA and GUS-PEP, were constructed with the ISD from a bacterial GUS and SBD and TIM domain from fungal GUSs. GUS-AEA and GUS-PEP showed 30.4% and 23.0% higher thermostability than GUS-PAP, respectively. Finally, molecular dynamics simulations were conducted to uncover the molecular reasons for the increased thermostability of the mutant.
- Subjects :
- chemistry.chemical_classification
biology
fungi
Mutant
food and beverages
Bioengineering
Protein engineering
Molecular Dynamics Simulation
Protein Engineering
biology.organism_classification
Applied Microbiology and Biotechnology
Fungal Proteins
Enzyme
Bacterial Proteins
Protein Domains
chemistry
Biochemistry
Domain (ring theory)
Humans
Glycoside hydrolase
Enzyme kinetics
Bacteria
Glucuronidase
Biotechnology
Thermostability
Subjects
Details
- ISSN :
- 10970290 and 00063592
- Volume :
- 118
- Database :
- OpenAIRE
- Journal :
- Biotechnology and Bioengineering
- Accession number :
- edsair.doi.dedup.....5236473cc37546c33d192d0bcde2bdb6