Chong Yoojin, Lee Shin-Won, Ahn Joong-Hoon
Department of Integrative Bioscience and Biotechnology, Bio/Molecular Informatics Center, Konkuk University, Seoul 05029, Republic of Korea.
Department of Integrative Bioscience and Biotechnology, Bio/Molecular Informatics Center, Konkuk University, Seoul 05029, Republic of Korea.
Curr Opin Biotechnol. 2022 Dec;78:102827. doi: 10.1016/j.copbio.2022.102827. Epub 2022 Oct 27.
Plants produce different types of phenolic compounds. The majority of these compounds are glycosylated. Phenolic O-glycosides are also common. Recently, C-glycosylation of phenolic compounds has received attention because of the biological importance of phenolic C-glycosides. To date, three classes of C-glycosyltransferases (CGTs) have been characterized based on the type of sugar acceptor: flavonoid CGT, coumarin CGT, and xanthone CGT. Phylogenetic analysis of glycosyltransferases has revealed that CGTs form a distinct class that is clearly different from that of O-glycosyltransferases. The characterized CGTs have been introduced into microbial systems to synthesize phenolic C-glycosides. Here, we review recent progress in the development of CGTs and their application in the synthesis of phenolic C-glycosides using microbial systems.
植物会产生不同类型的酚类化合物。这些化合物大多是糖基化的。酚类O-糖苷也很常见。近来,由于酚类C-糖苷的生物学重要性,酚类化合物的C-糖基化受到了关注。迄今为止,基于糖受体的类型,已鉴定出三类C-糖基转移酶(CGT):类黄酮CGT、香豆素CGT和呫吨酮CGT。糖基转移酶的系统发育分析表明,CGT形成了一个与O-糖基转移酶明显不同的独特类别。已将鉴定出的CGT引入微生物系统以合成酚类C-糖苷。在此,我们综述了CGT开发及其在利用微生物系统合成酚类C-糖苷中的应用方面的最新进展。