SlSEC1- and SlSPY-mediated O -glycosylation stabilizes the transcription factor SlNOR to promote tomato fruit ripening

转录因子 生物 突变体 成熟 转录调控 细胞生物学 调节器 遗传筛选 抄写(语言学) 基因 突变 生物化学 拟南芥 乙烯 主调节器 DNA结合蛋白 核蛋白 电泳迁移率测定 基因表达调控 蛋白质生物合成 生物合成 发起人 蛋白质降解 蛋白质-蛋白质相互作用 蛋白质结构域 负调节器 F盒蛋白
作者
Yudi Wu,Ruo-Han Ou,Can Yang,Tong-Hao Cui,Qianyu Wang,Yu-Yang Mei,Jia-Fei Qian,Yi-Long Liu,Yuan-Jiang Pan,Zhi-Ping Deng,Qianhui Gong,Li J,Zhen-Yu Qi,Yanna Shi,Donald Grierson,Bo Zhang,Kun‐song Chen,Li X,Xiao-Yong Zhao
出处
期刊:The Plant Cell [Oxford University Press]
标识
DOI:10.1093/plcell/koag144
摘要

O-Glycosylation is a critical post-translational modification (PTM) that regulates protein function, yet its role in regulating plant transcription factors remains poorly understood. Here, we report that O-glycosylation regulates NON-RIPENING (SlNOR), the master NAC transcription factor controlling tomato (Solanum lycopersicum) fruit ripening. Using proteomic and interaction assays, we identified SlNOR as a substrate of two conserved nucleocytoplasmic O-glycosyltransferases: the O-GlcNAc transferase SlSEC1 and the O-fucosyltransferase SlSPY. We mapped three O-glycosylation sites (Thr93, Thr134, and Ser165) within the NAC domain of SlNOR. Biochemical assays suggested that O-glycosylation protects SlNOR from protein degradation. Accordingly, simultaneous mutagenesis of the three O-glycosylation sites reduced SlNOR protein stability and nuclear accumulation. Functionally, O-glycosylated SlNOR exhibited enhanced transcriptional activation of the ethylene biosynthesis genes (SlACS2 and SlACO1), which was corroborated by its increased DNA-binding affinity in electrophoretic mobility shift assays. Genetic evidence from CRISPR/Cas9-generated mutants revealed that loss of SlSEC1 or SlSPY reduces ethylene production and delays ripening, while the Slsec1-1 Slspy double mutant displayed a cooperative ripening delay and severe growth defects. Collectively, our findings uncover a key PTM-based regulatory mechanism in which SlSEC1/SlSPY-mediated O-glycosylation enhances SlNOR stability and transcriptional activity, thereby coupling a master transcriptional regulator to ethylene biosynthesis for the control of fruit ripening.
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