A transposon-derived transcription factor senses ionic stress through phase separation to govern plant autophagy

自噬 转录因子 渗透性休克 细胞生物学 化学 离子键合 生物物理学 生物 拟南芥 未折叠蛋白反应 抄写(语言学) 袋3 遗传筛选 生物化学 细胞器 基因 调节器 突变体 基因表达调控 斑马鱼 蛋白质降解
作者
Yujia Shao,Songyang Wang,Li Liang,Biao Gong,Aurore Johary,Benhui Shi,Linyang Zhang,Yanqun Xu,Zoé Joly‐Lopez,Zisheng Luo,Thomas E. Bureau,Jiaqi Sun
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (32): e2617665123-e2617665123
标识
DOI:10.1073/pnas.2617665123
摘要

Salt stress severely impairs plant growth through two distinct cellular insults: osmotic stress caused by water limitation and ionic toxicity resulting from excessive Na + accumulation. Although plant osmosensors have been identified, the mechanisms underlying ionic stress perception remain elusive. Salt stress also activates autophagy, a conserved degradation pathway that removes damaged organelles and protein aggregates to promote stress tolerance. In animals, master regulators such as transcription factor EB (TFEB) coordinate this response by activating autophagy genes across the pathway, but no analogous regulator has been identified in plants. Here, we show that MUSTANG4 (MUG4), a transcription factor derived from Mutator-like element (MULE) transposons, functions as an ionic stress sensor and the primary transcriptional driver of salt-induced autophagy in Arabidopsis . MUG4 responds to elevated monovalent cation concentrations, but not chloride anions or osmotic stress, thereby distinguishing ionic from osmotic stress. Ionic stress compacts the intrinsically disordered region (IDR) of MUG4 and drives liquid–liquid phase separation of the full-length protein, as demonstrated by Förster resonance energy transfer–fluorescence lifetime imaging, in vitro assays, and coarse-grained molecular dynamics simulations. Genome-wide in vivo CUT&Tag sequencing and RNA sequencing reveal that MUG4 directly and coordinately activates autophagy genes spanning multiple functional stages of the pathway. IDR deletion abolishes phase separation, reduces autophagy gene activation and autophagic flux, and prevents the truncated protein from rescuing the salt-sensitive phenotype of mug4 mutants. These findings identify a dedicated plant ionic stress sensor and establish a mechanistic link between exapted transposable elements, phase separation, and transcriptional stress responses, thereby integrating ionic stress perception with autophagy activation.
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