Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 3 de 3
Filter
Add filters








Language
Year range
1.
Chinese Journal of Biotechnology ; (12): 90-97, 2014.
Article in Chinese | WPRIM | ID: wpr-242409

ABSTRACT

Enzymatic conversion is very important to produce functional rare sugars, but the conversion rate of single enzymes is generally low. To increase the conversion rate, a dual-enzyme coupled reaction system was developed. Dual-enzyme coupled reaction system was constructed using D-psicose-3-epimerase (DPE) and L-rhamnose isomerase (L-RhI), and used to convert D-fructose to D-psicose and D-allose. The ratio of DPE and L-RhI was 1:10 (W/W), and the concentration of DPE was 0.05 mg/mL. The optimum temperature was 60 degrees C and pH was 9.0. When the concentration of D-fructose was 2%, the reaction reached its equilibrium after 10 h, and the yield of D-psicose and D-allose was 5.12 and 2.04 g/L, respectively. Using the dual-enzymes coupled system developed in the current study, we could obtain sugar syrup containing functional rare sugar from fructose-rich raw material, such as high fructose corn syrup.


Subject(s)
Aldose-Ketose Isomerases , Metabolism , Carbohydrate Epimerases , Metabolism , Fructose , Chemistry , Glucose , Chemistry , Hydrogen-Ion Concentration , Temperature
2.
Chinese Journal of Biotechnology ; (12): 457-465, 2012.
Article in Chinese | WPRIM | ID: wpr-342471

ABSTRACT

Rare sugar is a kind of important low-energy monosaccharide that is rarely found in nature and difficult to synthesize chemically. D-allose, a six-carbon aldose, is an important rare sugar with unique physiological functions. It is radical scavenging active and can inhibit cancer cell proliferation. To obtain D-allose, the microorganisms deriving D-psicose 3-epimerase (DPE) and L-rhamnose isomerase (L-RhI) have drawn intense attention. In this paper, DPE from Clostridium cellulolyticum H10 was cloned and expressed in Bacillus subtilis, and L-RhI from Bacillus subtilis 168 was cloned and expressed in Escherichia coli BL21 (DE3). The obtained crude DPE and L-RhI were then purified through a HisTrap HP affinity chromatography column and an anion-exchange chromatography column. The purified DPE and L-RhI were employed for the production of rare sugars at last, in which DPE catalyzed D-fructose into D-psicose while L-RhI converted D-psicose into D-allose. The conversion of D-fructose into D-psicose by DPE was 27.34%, and the conversion of D-psicose into D-allose was 34.64%.


Subject(s)
Aldose-Ketose Isomerases , Metabolism , Bacillus subtilis , Carbohydrate Epimerases , Metabolism , Clostridium cellulolyticum , Escherichia coli , Metabolism , Fructose , Metabolism , Glucose , Metabolism
3.
Chinese Journal of Biotechnology ; (12): 592-601, 2012.
Article in Chinese | WPRIM | ID: wpr-342458

ABSTRACT

L-Arabinose isomerase (L-AI) is an intracellular enzyme that catalyzes the reversible isomerization of D-galactose and D-tagatose. Given the widespread use of D-tagatose in the food industry, food-grade microorganisms and the derivation of L-AI for the production of D-tagatose is gaining increased attention. In the current study, food-grade strains from different foods that can convert D-galactose to D-tagatose were screened. According to physiological, biochemical, and 16S rDNA gene analyses, the selected strain was found to share 99% identity with Pediococcus pentosaceus, and was named as Pediococcus pentosaceus PC-5. The araA gene encoding L-AI from Pediococcus pentosaceus PC-5 was cloned and overexpressed in E. coli BL21. The yield of D-tagatose using D-galactose as the substrate catalyzed by the crude enzyme in the presence of Mn2+ was found to be 33% at 40 degrees C.


Subject(s)
Aldose-Ketose Isomerases , Genetics , Biotransformation , Cloning, Molecular , Escherichia coli , Genetics , Metabolism , Galactose , Metabolism , Genetic Vectors , Genetics , Hexoses , Metabolism , Pediococcus , Classification , Genetics , Recombinant Proteins , Genetics
SELECTION OF CITATIONS
SEARCH DETAIL