渗透性休克
磷酸化
渗透浓度
级联
细胞生物学
胞浆
生物物理学
渗透压
化学
压力(语言学)
生物
信号转导
下游(制造业)
激酶
酿酒酵母
战斗或逃跑反应
机制(生物学)
酵母
调节器
生物系统
渗透
重组DNA
拟南芥
信号(编程语言)
蛋白激酶A
物理
作者
G. Q. Liu,Zhen Lin,Guanquan Lin,Xinyong Wang,Xiaolei Liu,Zhaobo Lang,Jian-Kang Zhu,Pengcheng Wang
标识
DOI:10.64898/2026.01.03.697504
摘要
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.
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