Evolved Beta-galactosidases from Geobacillus Stearothermophilus with Improved Transgalactosylation Yield for Galacto-oligosaccharide Production
Overview
Microbiology
Affiliations
A mutagenesis approach was applied to the beta-galactosidase BgaB from Geobacillus stearothermophilus KVE39 in order to improve its enzymatic transglycosylation of lactose into oligosaccharides. A simple screening strategy, which was based on the reduction of the hydrolysis of a potential transglycosylation product (lactosucrose), provided mutant enzymes possessing improved synthetic properties for the autocondensation product from nitrophenyl-galactoside and galacto-oligosaccharides (GOS) from lactose. The effects of the mutations on enzyme activity and kinetics were determined. An change of one arginine to lysine (R109K) increased the oligosaccharide yield compared to that for the wild-type BgaB. Subsequently, saturation mutagenesis at this position demonstrated that valine and tryptophan further increased the transglycosylation performance of BgaB. During the transglycosylation reaction with lactose of the evolved beta-galactosidases, a major trisaccharide was formed. Its structure was characterized as beta-D-galactopyranosyl-(1-->3)-beta-D-galactopyranosyl-(1-->4)-D-glucopyranoside (3'-galactosyl-lactose). At the lactose concentration of 18% (wt/vol), this trisaccharide was obtained in yields of 11.5% (wt/wt) with GP21 (BgaB R109K), 21% with GP637.2 (BgaB R109V), and only 2% with the wild-type BgaB enzyme. GP643.3 (BgaB R109W) was shown to be the most efficient mutant, with a 3'-galactosyl-lactose production of 23%.
Prebiotic Effects of α- and β-Galactooligosaccharides: The Structure-Function Relation.
Ignatova I, Arsov A, Petrova P, Petrov K Molecules. 2025; 30(4).
PMID: 40005114 PMC: 11858185. DOI: 10.3390/molecules30040803.
Mol M, De Maayer P BMC Genomics. 2024; 25(1):723.
PMID: 39054411 PMC: 11270796. DOI: 10.1186/s12864-024-10635-1.
GH2 family β-galactosidases evolution using degenerate oligonucleotide gene shuffling.
Sun J, Wang W, Hao J Biotechnol Lett. 2023; 45(5-6):655-665.
PMID: 37071382 DOI: 10.1007/s10529-023-03368-w.
Zeuner B, Teze D, Muschiol J, Meyer A Molecules. 2019; 24(11).
PMID: 31141914 PMC: 6600218. DOI: 10.3390/molecules24112033.
Engineering of the Bacillus circulans β-Galactosidase Product Specificity.
Yin H, Pijning T, Meng X, Dijkhuizen L, van Leeuwen S Biochemistry. 2017; 56(5):704-711.
PMID: 28092444 PMC: 5330655. DOI: 10.1021/acs.biochem.7b00032.