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Rapid sensing and relaying of cellular hyperosmotic-stress signals via RAF–SnRK2 core condensates

作者:G. Q. Liu, Zhen Lin, Guanquan Lin, Xinyong Wang, Xiaolei Liu, Zhaobo Lang, Jian-Kang Zhu, Pengcheng Wang · 发表于:bioRxiv (Cold Spring Harbor Laboratory) · 年份:2026 · DOI:10.64898/2026.01.03.697504 · 研究领域:Plant Stress Responses and Tolerance、Plant responses to water stress、Plant Gene Expression Analysis

Summary Hyperosmolarity caused by drought, high salinity, or cold stress inhibits plant growth and crop productivity 1,2 . A conserved protein-kinase cascade of cytosolic B-RAFs and SnRK2s is rapidly activated upon osmotic stresses to initiate downstream adaptive responses, which represents one of the fastest known responses to osmotic stress in plants 3–8 . How the kinase cascade is activated by osmotic stress is unknown. Here, we show that Arabidopsis B4 subgroup RAFs have intrinsically disordered regions and directly sense both ionic and non-ionic hyperosmolarity by reversible condensation. B4-RAFs recruit and co-condense with subclass-I SnRK2s to phosphorylate and turn on SnRK2s, evading the non-condensable inhibitory A-clade PP2C phosphatases. This straightforward osmosensing and relaying module can be fully reconstituted in E. coli by co-expressing three components or in solution in a test tube using recombinant proteins. Our findings identify B-RAFs as the chief cellular osmosensors that detect low water potential by co-condensation, forming a signal hub with SnRK2s to orchestrate adaptive responses in plants, and represent an evolutionarily conserved osmosensing mechanism across kingdoms.