OsBCAT2, a gene responsible for the degradation of branched‐chain amino acids, positively regulates salt tolerance by promoting the synthesis of vitamin B5

Author:

Sun Yangyang123ORCID,Zhou Yutong2,Long Qiyuan12ORCID,Xing Junwei2,Guo Peizhen2,Liu Yanchen12,Zhang Changjian12,Zhang Yuanyuan12ORCID,Fernie Alisdair R.4ORCID,Shi Yuheng5ORCID,Luo Yuehua12,Luo Jie15ORCID,Jin Cheng12ORCID

Affiliation:

1. School of Breeding and Multiplication (Sanya Institute of Breeding and Multiplication) Hainan University Sanya 572025 China

2. School of Tropical Agriculture and Forestry Hainan University Haikou Hainan 570288 China

3. Sanya Research Institute of Hainan Academy of Agricultural Sciences Sanya 572025 China

4. Max Planck Institute of Molecular Plant Physiology Potsdam‐Golm 14476 Germany

5. Yazhouwan National Laboratory Sanya 572025 China

Abstract

Summary Salt stress negatively affects rice growth, development and yield. Metabolic adjustments contribute to the adaptation of rice under salt stress. Branched‐chain amino acids (BCAA) are three essential amino acids that cannot be synthesized by humans or animals. However, little is known about the role of BCAA in response to salt stress in plants. Here, we showed that BCAAs may function as scavengers of reactive oxygen species (ROS) to provide protection against damage caused by salinity. We determined that branched‐chain aminotransferase 2 (OsBCAT2), a protein responsible for the degradation of BCAA, positively regulates salt tolerance. Salt significantly induces the expression of OsBCAT2 rather than BCAA synthesis genes, which indicated that salt mainly promotes BCAA degradation and not de novo synthesis. Metabolomics analysis revealed that vitamin B5 (VB5) biosynthesis pathway intermediates were higher in the OsBCAT2‐overexpressing plants but lower in osbcat2 mutants under salt stress. The salt stress‐sensitive phenotypes of the osbcat2 mutants are rescued by exogenous VB5, indicating that OsBCAT2 affects rice salt tolerance by regulating VB5 synthesis. Our work provides new insights into the enzymes involved in BCAAs degradation and VB5 biosynthesis and sheds light on the molecular mechanism of BCAAs in response to salt stress.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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