The Key Laboratory of Plant Development and Environment Adaptation Biology, Ministry of Education, Shandong University, Qingdao 266237, PR China.
School of Pharmacy, Liaocheng University, Liaocheng, Shandong 250000, PR China.
Plant Sci. 2022 Aug;321:111314. doi: 10.1016/j.plantsci.2022.111314. Epub 2022 May 13.
The plant family 1 UDP-glycosyltransferases (UGTs) are increasingly being investigated because of their contribution to plant secondary metabolism and other diverse biological roles. The apple (Malus domestica) is one of the most widely cultivated fruit trees with great economic importance. However, little is known regarding the apple UGTs. In this study, we identified 229 members of family 1 through a genome-wide analysis of the apple UGTs, which were clustered into 18 groups, from A to R. We also performed detailed analysis of 34 apple UGTs by quantitative RT-PCR, and discovered a number of stress-regulated UGTs. Among them, we characterized the role of MD09G1064900, also named MdUGT83L3, which was significantly induced by salt and cold. In vivo analysis showed that it has high activity towards cyanidin, and moderate activity towards quercetin and keampferol. Transgenic callus and regenerated apple plants overexpressing MdUGT83L3 showed enhanced tolerance to salt and cold treatments. Overexpression of MdUGT83L3 also increased anthocyanin accumulation in the callus tissues and enhanced ROS clearing upon exposure to salt and cold stresses. Furthermore, via yeast-one-hybrid assay, EMSA and CHIP analyses, we also found that MdUGT83L3 could be directly regulated by MdMYB88. Our study indicated that MdUGT83L3, under the regulation of MdMYB88, plays important roles in salt and cold stress adaptation via modulating flavonoid metabolism in apple.
植物家族 1 UDP-糖基转移酶(UGTs)由于其对植物次生代谢和其他多种生物学作用的贡献,越来越受到关注。苹果(Malus domestica)是最广泛种植的果树之一,具有重要的经济意义。然而,对于苹果 UGTs 知之甚少。在这项研究中,我们通过对苹果 UGTs 的全基因组分析,鉴定出了 229 个家族 1 成员,这些成员被聚类为 18 组,从 A 到 R。我们还通过定量 RT-PCR 对 34 个苹果 UGTs 进行了详细分析,发现了一些受胁迫调节的 UGTs。其中,我们对 MD09G1064900(也称为 MdUGT83L3)进行了特征分析,该基因在盐和冷胁迫下显著诱导。体内分析表明,它对矢车菊素具有高活性,对槲皮素和山柰酚具有中等活性。过表达 MdUGT83L3 的转基因愈伤组织和再生苹果植株对盐和冷胁迫的耐受性增强。过表达 MdUGT83L3 还增加了愈伤组织中花色苷的积累,并增强了对盐和冷胁迫的 ROS 清除能力。此外,通过酵母单杂交试验、EMSA 和 CHIP 分析,我们还发现 MdUGT83L3 可以被 MdMYB88 直接调控。我们的研究表明,在 MdMYB88 的调控下,MdUGT83L3 通过调节苹果中的类黄酮代谢,在盐和冷胁迫适应中发挥重要作用。