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Economical one-pot synthesis of isoquercetin and D-allulose from quercetin and sucrose using whole-cell biocatalyst.
- Source :
-
Enzyme & Microbial Technology . May2024, Vol. 176, pN.PAG-N.PAG. 1p. - Publication Year :
- 2024
-
Abstract
- Isoquercetin and D-allulose have diverse applications and significant value in antioxidant, antibacterial, antiviral, and lipid metabolism. Isoquercetin can be synthesized from quercetin, while D-allulose is converted from D-fructose. However, their production scale and overall quality are relatively low, leading to high production costs. In this study, we have devised a cost-effective one-pot method for biosynthesizing isoquercetin and D-allulose using a whole-cell biocatalyst derived from quercetin and sucrose. To achieve this, the optimized isoquercetin synthase and D-allulose-3-epimerase were initially identified through isofunctional gene screening. In order to reduce the cost of uridine diphosphate glucose (UDPG) during isoquercetin synthesis and ensure a continuous supply of UDPG, sucrose synthase is introduced to enable the self-circulation of UDPG. At the same time, the inclusion of sucrose permease was utilized to successfully facilitate the catalytic production of D-allulose in whole cells. Finally, the recombinant strain BL21/UGT-SUS+DAE-SUP, which overexpresses Mi F3GTMUT, Gm SUS, Ec SUP, and DAEase, was obtained. This strain co-produced 41±2.4 mg/L of isoquercetin and 5.7±0.8 g/L of D-allulose using 120 mg/L of quercetin and 20 g/L of sucrose as substrates for 5 h after optimization. This is the first green synthesis method that can simultaneously produce flavonoid compounds and rare sugars. These findings provide valuable insights and potential for future industrial production, as well as practical applications in factories. • Simultaneous production of isoquercitrin and allulose using a single strain of recombinant E.coli. • Whole-cell catalysis as a green and efficient method with future industrial prospects. • Constructed self-recycling of UDPG(uridine diphosphate glucose) cofactors to reduce UDPG costs. • Whole-cell catalysis of sucrose by introduction of sucrose permease. [ABSTRACT FROM AUTHOR]
Details
- Language :
- English
- ISSN :
- 01410229
- Volume :
- 176
- Database :
- Academic Search Index
- Journal :
- Enzyme & Microbial Technology
- Publication Type :
- Academic Journal
- Accession number :
- 176150541
- Full Text :
- https://doi.org/10.1016/j.enzmictec.2024.110412