Yang Yang, Wang Jia, Han Fuchuan, Zhang Jiantao, Gao Ming, Zhao Yunxiao, Chen Yicun, Wang Yangdong
State Key Laboratory of Tree Genetics and Breeding, Chinese Academy of Forestry, Beijing 100091, China.
Research Institute of Subtropical Forestry, Chinese Academy of Forestry, Hangzhou 311400, Zhejiang Province, China.
For Res (Fayettev). 2024 Oct 31;4:e035. doi: 10.48130/forres-0024-0032. eCollection 2024.
UGT catalyzes the transfer of glycosyl molecules from donors to acceptors, and the glycosylation catalyzed by them is a modification reaction essential for plant cell growth, development, and metabolic homeostasis. Members of this class of enzymes are found in all areas of life and are involved in the biosynthesis of an extensive range of glycosides. This review aims to screen and collate relevant properties of the UGT71 family in plants and their functions in plant secondary metabolites. Firstly, we conducted a retrospective analysis of information about plant UGTs, before focusing on UGT71s through glycosylation of secondary metabolites (triterpenoids, flavonoids) and glycosylation of phytohormones (ABA, SA). Consequently, they play a pivotal role in plant defence, hormone regulation, and the biosynthesis of secondary metabolites, thereby enabling plants to adapt to changing environments. Further investigation revealed that UGTs (UGT71s) can enhance the adaptive and resistant potential of plants in the context of today's deteriorating growing conditions due to climate change impacts caused by global warming. Nevertheless, further in-depth studies on the intricate interactions among UGTs in plants are required to fully exploit the potential of UGTs in protecting plants against stress.
尿苷二磷酸葡萄糖基转移酶(UGT)催化糖基分子从供体转移至受体,其催化的糖基化反应是植物细胞生长、发育及代谢稳态所必需的修饰反应。这类酶的成员存在于生命的各个领域,参与多种糖苷的生物合成。本综述旨在筛选和整理植物中UGT71家族的相关特性及其在植物次生代谢产物中的功能。首先,我们对植物UGT的信息进行了回顾性分析,然后通过次生代谢产物(三萜类、黄酮类)的糖基化以及植物激素(脱落酸、水杨酸)的糖基化来聚焦UGT71。因此,它们在植物防御、激素调节和次生代谢产物生物合成中发挥着关键作用,从而使植物能够适应不断变化的环境。进一步研究表明,由于全球变暖导致气候变化影响,在如今日益恶化的生长条件下,UGT(UGT71)能够增强植物的适应和抗性潜力。然而,需要对植物中UGT之间复杂的相互作用进行更深入的研究,以充分挖掘UGT在保护植物免受胁迫方面的潜力。