Division of Biomedical Measurements and Diagnostics, Graduate School of Biomedical Engineering, Tohoku University, Sendai, 980-8575, Japan; Laboratory for Protein Functional and Structural Biology, RIKEN Center for Biosystems Dynamics Research, Yokohama, 230-0045, Japan.
Laboratory for Protein Functional and Structural Biology, RIKEN Center for Biosystems Dynamics Research, Yokohama, 230-0045, Japan.
Arch Biochem Biophys. 2024 Mar;753:109926. doi: 10.1016/j.abb.2024.109926. Epub 2024 Feb 10.
Of the more than 100 families of glycosyltransferases, family 1 glycosyltransferases catalyze glycosylation using uridine diphosphate (UDP)-sugar as a sugar donor and are thus referred to as UDP-sugar:glycosyl transferases. The blue color of the Nemophila menziesii flower is derived from metalloanthocyanin, which consists of anthocyanin, flavone, and metal ions. Flavone 7-O-β-glucoside-4'-O-β-glucoside in the plant is sequentially biosynthesized from flavons by UDP-glucose:flavone 4'-O-glucosyltransferase (NmF4'GT) and UDP-glucose:flavone 4'-O-glucoside 7-O-glucosyltransferase (NmF4'G7GT). To identify the molecular mechanisms of glucosylation of flavone, the crystal structures of NmF4'G7GT in its apo form and in complex with UDP-glucose or luteolin were determined, and molecular structure prediction using AlphaFold2 was conducted for NmF4'GT. The crystal structures revealed that the size of the ligand-binding pocket and interaction environment for the glucose moiety at the pocket entrance plays a critical role in the substrate preference in NmF4'G7GT. The substrate specificity of NmF4'GT was examined by comparing its model structure with that of NmF4'G7GT. The structure of NmF4'GT may have a smaller acceptor pocket, leading to a substrate preference for non-glucosylated flavones (or flavone aglycones).
在超过 100 种糖基转移酶家族中,家族 1 糖基转移酶使用尿苷二磷酸 (UDP)-糖作为糖供体催化糖基化,因此被称为 UDP-糖:糖基转移酶。Nemophila menziesii 花的蓝色来自金属类黄酮,它由类黄酮、黄酮和金属离子组成。植物中的黄酮 7-O-β-葡萄糖苷-4'-O-β-葡萄糖苷是由 UDP-葡萄糖:黄酮 4'-O-葡萄糖基转移酶 (NmF4'GT) 和 UDP-葡萄糖:黄酮 4'-O-葡萄糖苷 7-O-葡萄糖基转移酶 (NmF4'G7GT) 依次从类黄酮生物合成的。为了确定黄酮糖基化的分子机制,测定了 NmF4'G7GT 在apo 形式及其与 UDP-葡萄糖或木犀草素复合物中的晶体结构,并使用 AlphaFold2 对 NmF4'GT 进行了分子结构预测。晶体结构表明,配体结合口袋的大小和口袋入口处葡萄糖部分的相互作用环境在 NmF4'G7GT 的底物偏好中起着关键作用。通过将其模型结构与 NmF4'G7GT 的模型结构进行比较,研究了 NmF4'GT 的底物特异性。NmF4'GT 的结构可能具有较小的受体口袋,导致对非葡萄糖化的黄酮(或黄酮苷元)的底物偏好。