The protein phosphatase PC1 dephosphorylates and deactivates CatC to negatively regulate H2O2 homeostasis and salt tolerance in rice

Author:

Liu Cong1ORCID,Lin Jian-Zhong1ORCID,Wang Yan1ORCID,Tian Ye1ORCID,Zheng He-Ping1ORCID,Zhou Zheng-Kun1ORCID,Zhou Yan-Biao2ORCID,Tang Xiao-Dan2ORCID,Zhao Xin-Hui2ORCID,Wu Ting1ORCID,Xu Shi-Long2ORCID,Tang Dong-Ying1ORCID,Zuo Ze-Cheng3ORCID,He Hang4ORCID,Bai Lian-Yang5ORCID,Yang Yuan-Zhu2ORCID,Liu Xuan-Ming1ORCID

Affiliation:

1. Hunan Province Key Laboratory of Plant Functional Genomics and Developmental Regulation, State Key Laboratory of Chemo/Biosensing and Chemometrics, National Center of Technology Innovation for Saline-Alkali Tolerant Rice, College of Biology, Hunan University , Changsha 410082 , China

2. Key Laboratory of Southern Rice Innovation & Improvement, Ministry of Agriculture and Rural Affairs/Hunan Engineering Laboratory of Disease and Pest Resistant Rice Breeding, Yuan Longping High-Tech Agriculture Co., Ltd , Changsha 410001 , China

3. Jilin Province Engineering Laboratory of Plant Genetic Improvement, College of Plant Science, Jilin University , Changchun 130062 , China

4. School of Advanced Agricultural Sciences and School of Life Sciences, State Key Laboratory of Protein and Plant Gene Research, Peking University , Beijing 100871 , China

5. Hunan Agricultural Biotechnology Research Institute, Hunan Academy of Agricultural Sciences , Changsha 410125 , China

Abstract

Abstract Catalase (CAT) is often phosphorylated and activated by protein kinases to maintain hydrogen peroxide (H2O2) homeostasis and protect cells against stresses, but whether and how CAT is switched off by protein phosphatases remains inconclusive. Here, we identified a manganese (Mn2+)–dependent protein phosphatase, which we named PHOSPHATASE OF CATALASE 1 (PC1), from rice (Oryza sativa L.) that negatively regulates salt and oxidative stress tolerance. PC1 specifically dephosphorylates CatC at Ser-9 to inhibit its tetramerization and thus activity in the peroxisome. PC1 overexpressing lines exhibited hypersensitivity to salt and oxidative stresses with a lower phospho-serine level of CATs. Phosphatase activity and seminal root growth assays indicated that PC1 promotes growth and plays a vital role during the transition from salt stress to normal growth conditions. Our findings demonstrate that PC1 acts as a molecular switch to dephosphorylate and deactivate CatC and negatively regulate H2O2 homeostasis and salt tolerance in rice. Moreover, knockout of PC1 not only improved H2O2-scavenging capacity and salt tolerance but also limited rice grain yield loss under salt stress conditions. Together, these results shed light on the mechanisms that switch off CAT and provide a strategy for breeding highly salt-tolerant rice.

Funder

National Science Foundation of China

National Center of Technology Innovation for Saline-Alkali Tolerant Rice

Hunan Provincial Important Science and Technology

Natural Science Foundation of Hunan Province, China

China Postdoctoral Science Foundation

Open Competition Subject of Hainan Yazhou Bay Seed Lab

Public Subject of State Key Laboratory of Hybrid Rice

Hunan Hybrid Rice Research Center

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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