Microbial biotransformation of bioactive flavonoids

被引:260
作者
Cao, Hui [1 ,2 ]
Chen, Xiaoqing [2 ]
Jassbi, Amir Reza [3 ]
Xiao, Jianbo [4 ,5 ]
机构
[1] Nantong Univ, Sch Chem & Chem Engn, Nantong 226007, Peoples R China
[2] Cent S Univ, Dept Chem, Changsha 410083, Peoples R China
[3] Shiraz Univ Med Sci, Med & Nat Prod Chem Res Ctr, Shiraz, Iran
[4] Macau Univ Sci & Technol, State Key Lab Qual Res Chinese Med, Taipa, Macau, Peoples R China
[5] Univ Wurzburg, Inst Pharm & Lebensmittelchem, D-97074 Wurzburg, Germany
关键词
Flavonoids; Microbial biotransformation; Fungi; Bacteria; SKIM MILK POWDER; ASPERGILLUS-NIGER; ISOFLAVONE GLYCOSIDES; IN-VITRO; NATURAL-PRODUCTS; O-DEMETHYLATION; REGIOSELECTIVE HYDROXYLATION; CUNNINGHAMELLA-ELEGANS; ANTIOXIDANT ACTIVITIES; EUCALYPTUS-PERRINIANA;
D O I
10.1016/j.biotechadv.2014.10.012
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 [微生物学]; 090105 [作物生产系统与生态工程];
摘要
The bioactive flavonoids are considered as the most important phytochemicals in food, which exert a wide range of biological benefits for human being. Microbial biotransformation strategies for production of flavonoids have attracted considerable interest because they allow yielding novel flavonoids, which do not exist in nature. In this review, we summarize the existing knowledge on the production and biotransformation of flavonoids by various microbes. The main reactions during microbial biotransformation are hydroxylation, dehydroxylation, O-methylation, O-demethylation, glycosylation, deglycosylation, dehydrogenation, hydrogenation, C ring cleavage of the benzo-gamma-pyrone system, cyclization, and carbonyl reduction. Cunninghamella, Penicillium, and Aspergillus strains are very popular to biotransform flavonoids and they can perform almost all the reactions with excellent yields. Aspergillus niger is one of the most applied microorganisms in the flavonoids' biotransformation; for example, A. niger can transfer flavanone to flavan-4-ol, 2'-hydroxydihydrochalcone, flavone, 3-hydroxyflavone, 6-hydroxyflavanone, and 4'-hydroxyflavanone. The hydroxylation of flavones by microbes usually happens on the ortho position of hydroxyl group on the A ring and C-4' position of the B ring and microbes commonly hydroxylate flavonols at the C-8 position. The microorganisms tend to hydroxylate flavanones at the C-5, 6, and 4' positions; however, for prenylated flavanones, dihydroxylation often takes place on the C-4 alpha = C-5 alpha double bond on the prenyl group (the side chain of A ring). Isoflavones are usually hydroxylated at the C-3' position of the B ring by microorganisms. The microbes convert flavonoids to their 7-O-glycosides and 3-O-glycosides (when flavonoids have a hydroxyl moiety at the C-3 position). The demethylation of multimethoxyl flavonoids by microbes tends to happen at the C-3' and C-4' positions of the B ring. Multimethoxyl flavanones and isoflavone are demethylated at the C-7 and C-4' positions. The O-methylation of flavonols happens at the C-3' and C-4' and microorganisms O-methylate flavones at the C-6 position and the O-methylation of flavanones, usually took place on the hydroxyl groups of the Acing. The prenyl flavanones were cyclized at the prenyl side chain to form a new five-member ring attached to the Acing. Chalcones were regioselectively cyclized to flavanones. Hydrogenation of flavonoids was only reported on transformation of chalcones to dihydrochalcones. The dehydrogenation of flavanoids to flavonoids was not comprehensively studied. (C) 2014 Elsevier Inc. All rights reserved.
引用
收藏
页码:214 / 223
页数:10
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