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