CAMTA3 repressor destabilization triggers TIR domain protein TN2-mediated autoimmunity in the Arabidopsis exo70B1 mutant

Author:

Liu Na12ORCID,Jiang Xiyuan3ORCID,Zhong Guitao14ORCID,Wang Wei125ORCID,Hake Katharina36ORCID,Matschi Susanne3ORCID,Lederer Sarah3ORCID,Hoehenwarter Wolfgang3ORCID,Sun Qianqian14ORCID,Lee Justin3ORCID,Romeis Tina36ORCID,Tang Dingzhong125ORCID

Affiliation:

1. State Key Laboratory of Ecological Control of Fujian-Taiwan Crop Pests, Key Laboratory of Ministry of Education for Genetics, Breeding and Multiple Utilization of Crops, Plant Immunity Center, Fujian Agriculture and Forestry University , Fuzhou 350002 , China

2. Ministerial and Provincial Joint Innovation Centre for Safety Production of Cross-Strait Crops, Fujian Agriculture and Forestry University , Fuzhou 350002 , China

3. Department for Biochemistry of Plant Interactions, Leibniz Institute of Plant Biochemistry , Halle (Saale) 06120 , Germany

4. College of Life Sciences, Fujian Agriculture and Forestry University , Fuzhou 350002 , China

5. College of Agriculture, Fujian Agriculture and Forestry University , Fuzhou 350002 , China

6. Dahlem Centre of Plant Sciences, Freie Universität Berlin , Berlin 14195 , Germany

Abstract

Abstract Calcium-dependent protein kinases (CPKs) can decode and translate intracellular calcium signals to induce plant immunity. Mutation of the exocyst subunit gene EXO70B1 causes autoimmunity that depends on CPK5 and the Toll/interleukin-1 receptor (TIR) domain resistance protein TIR-NBS2 (TN2), where direct interaction with TN2 stabilizes CPK5 kinase activity. However, how the CPK5–TN2 interaction initiates downstream immune responses remains unclear. Here, we show that, besides CPK5 activity, the physical interaction between CPK5 and functional TN2 triggers immune activation in exo70B1 and may represent reciprocal regulation between CPK5 and the TIR domain functions of TN2 in Arabidopsis (Arabidopsis thaliana). Moreover, we detected differential phosphorylation of the calmodulin-binding transcription activator 3 (CAMTA3) in the cpk5 background. CPK5 directly phosphorylates CAMTA3 at S964, contributing to its destabilization. The gain-of-function CAMTA3A855V variant that resists CPK5-induced degradation rescues immunity activated through CPK5 overexpression or exo70B1 mutation. Thus, CPK5-mediated immunity is executed through CAMTA3 repressor degradation via phosphorylation-induced and/or calmodulin-regulated processes. Conversely, autoimmunity in camta3 also partially requires functional CPK5. While the TIR domain activity of TN2 remains to be tested, our study uncovers a TN2–CPK5–CAMTA3 signaling module for exo70B1-mediated autoimmunity, highlighting the direct embedding of a calcium-sensing decoder element within resistance signalosomes.

Funder

National Natural Science Foundation of China

Deutsche Forschungsgemeinschaft

Publisher

Oxford University Press (OUP)

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