cyclodextrin glycosyltransferase
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Author(s):  
Shuangdi Chen ◽  
Zhaofeng Li ◽  
Zhengbiao Gu ◽  
Xiaofeng Ban ◽  
Yan Hong ◽  
...  

Food Control ◽  
2021 ◽  
pp. 108296
Author(s):  
Tonghui Liu ◽  
Chuqi Feng ◽  
Zhaofeng Li ◽  
Zhengbiao Gu ◽  
Xiaofeng Ban ◽  
...  

2021 ◽  
Vol 12 ◽  
Author(s):  
Kai Song ◽  
Jingjing Sun ◽  
Wei Wang ◽  
Jianhua Hao

In this study, the cgt gene my20, which encodes cyclodextrin glycosyltransferase (CGTase) and was obtained by the metagenome sequencing of marine microorganisms from the Mariana Trench, was codon optimized and connected to pET-24a for heterologous expression in Escherichia coli BL21(DE3). Through shaking flask fermentation, the optimized condition for recombinant CGTase expression was identified as 20°C for 18 h with 0.4 mM of isopropyl β-D-L-thiogalactopyranoside. The recombinant CGTase was purified by Ni2+-NTA resin, and the optimum pH and temperature were identified as pH 7 and 80°C, respectively. Activity was stable over wide temperature and pH ranges. After purification by Ni2+-NTA resin, the specific activity of the CGTase was 63.3 U/mg after 67.3-fold purification, with a final yield of 43.7%. In addition, the enzyme was used to transform L-ascorbic acid into 2-O-α-D-glucopyranosyl-L-ascorbic acid (AA-2G). The maximal AA-2G production reached 28 g/L, at 40°C, pH 4, 24 h reaction time, 50 g/L donor concentration, and 50 U/g enzyme dosage. The superior properties of recombinant CGTase strongly facilitate the industrial production of AA-2G.


Molecules ◽  
2021 ◽  
Vol 26 (3) ◽  
pp. 680
Author(s):  
Babatunde Ogunbadejo ◽  
Sulaiman Al-Zuhair

Cyclodextrins (CDs) and their derivatives have attracted significant attention in the pharmaceutical, food, and textile industries, which has led to an increased demand for their production. CD is typically produced by the action of cyclodextrin glycosyltransferase (CGTase) on starch. Owing to the relatively high cost of enzymes, the economic feasibility of the entire process strongly depends on the effective retention and recycling of CGTase in the reaction system, while maintaining its stability. CGTase enzymes immobilized on various supports such as porous glass beads or glyoxyl-agarose have been previously used to achieve this objective. Nevertheless, the attachment of biocatalysts on conventional supports is associated with numerous drawbacks, including enzyme leaching prominent in physical adsorption, reduced activity as a result of chemisorption, and increased mass transfer limitations. Recent reports on the successful utilization of metal–organic frameworks (MOFs) as supports for various enzymes suggest that CGTase could be immobilized for enhanced production of CDs. The three-dimensional microenvironment of MOFs could maintain the stability of CGTase while posing minimal diffusional limitations. Moreover, the presence of different functional groups on the surfaces of MOFs could provide multiple points for attachment of CGTase, thereby reducing enzyme loss through leaching. The present review focuses on the advantages MOFs can offer as support for CGTase immobilization as well as their potential for application in CD production.


BIOCELL ◽  
2021 ◽  
Vol 45 (6) ◽  
pp. 1661-1672
Author(s):  
YASSER S. MOSTAFA ◽  
SAAD A. ALAMRI ◽  
SULIMAN A. ALRUMMAN ◽  
TAREK H. TAHA ◽  
MOHAMED HASHEM ◽  
...  

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