Zhao Mingyue, Wang Jingming, Hao Xinyuan, Jin Jieyang, Tang Junwei, Wang Yueyue, Zhang Mengting, Jing Tingting, Schwab Wilfried, Gao Ting, Wang Xinchao, Song Chuankui
National Key Laboratory for Tea Plant Germplasm Innovation and Resource Utilization, Anhui Agricultural University, Hefei, Anhui, China.
National Center for Tea Plant Improvement, Tea Research Institute, Chinese Academy of Agricultural Sciences, Hangzhou, China.
Plant Biotechnol J. 2025 Jul;23(7):2809-2823. doi: 10.1111/pbi.70112. Epub 2025 Apr 29.
Cold stress severely limits tea plant (Camellia sinensis) productivity, yet the molecular mechanisms underlying cold adaptation remain elusive. Here, we identified a cold-inducible glycosyltransferase, CsUGT71A60, through integrative genome-wide association studies (GWAS) and proteomic profiling. Natural variation in CsUGT71A60 was strongly associated with cold tolerance, as evidenced by linkage disequilibrium analysis of flanking SNPs. Functional characterization revealed that CsUGT71A60 specifically catalyses the glycosylation of cis-zeatin to form cis-zeatin 9-O-glucoside in vitro and in vivo. Overexpression of CsUGT71A60 in Arabidopsis enhanced cold tolerance and agronomic traits, including germination rate, tiller number and seed weight, while delaying flowering. Transient silencing of CsUGT71A60 in tea plants disrupted cis-zeatin homoeostasis, impairing antioxidant defences and osmotic regulation under cold stress. Mechanistically, the transcription factor ARR (TEA021099) directly binds to CRM elements in the CsUGT71A60 promoter, activating its expression to fine-tune cytokinin signalling. This study unveils a dual-function glycosyltransferase that orchestrates stress tolerance and developmental plasticity, offering a strategic target for breeding climate-tolerance crops without yield penalties.
低温胁迫严重限制茶树(Camellia sinensis)的生产力,但茶树适应低温的分子机制仍不清楚。在此,我们通过全基因组关联研究(GWAS)和蛋白质组分析相结合的方法,鉴定出一个低温诱导的糖基转移酶CsUGT71A60。侧翼单核苷酸多态性(SNP)的连锁不平衡分析表明,CsUGT71A60的自然变异与耐寒性密切相关。功能特性分析显示,CsUGT71A60在体外和体内均能特异性催化顺式玉米素糖基化形成顺式玉米素9-O-葡萄糖苷。在拟南芥中过表达CsUGT71A60可增强耐寒性和农艺性状,包括发芽率、分蘖数和种子重量,同时延迟开花。在茶树中瞬时沉默CsUGT71A60会破坏顺式玉米素的稳态,损害低温胁迫下的抗氧化防御和渗透调节。从机制上讲,转录因子ARR(TEA021099)直接与CsUGT71A60启动子中的CRM元件结合,激活其表达以微调细胞分裂素信号传导。本研究揭示了一种协调胁迫耐受性和发育可塑性的双功能糖基转移酶,为培育不减产的耐气候作物提供了一个战略靶点。