CRISPR‐targeted mutagenesis of mitogen‐activated protein kinase phosphatase 1 improves both immunity and yield in wheat

Author:

Liu Saifei12,Zhang Fengfeng1,Su Jiaxuan1,Fang Anfei1,Tian Binnian1,Yu Yang1,Bi Chaowei1,Ma Dongfang3,Xiao Shunyuan45ORCID,Yang Yuheng1ORCID

Affiliation:

1. Key Laboratory of Agricultural Biosafety and Green Production of Upper Yangtze River (Ministry of Education), College of Plant Protection Southwest University Chongqing China

2. Institute for Plant Sciences, Cluster of Excellence on Plant Sciences University of Cologne Cologne Germany

3. Hubei Collaborative Innovation Center for Grain Industry/College of Agriculture Yangtze University Jingzhou Hubei China

4. Institute for Bioscience and Biotechnology Research University of Maryland Rockville Maryland USA

5. Department of Plant Science and Landscape Architecture University of Maryland College Park Maryland USA

Abstract

SummaryPlants have evolved a sophisticated immunity system for specific detection of pathogens and rapid induction of measured defences. Over‐ or constitutive activation of defences would negatively affect plant growth and development. Hence, the plant immune system is under tight positive and negative regulation. MAP kinase phosphatase1 (MKP1) has been identified as a negative regulator of plant immunity in model plant Arabidopsis. However, the molecular mechanisms by which MKP1 regulates immune signalling in wheat (Triticum aestivum) are poorly understood. In this study, we investigated the role of TaMKP1 in wheat defence against two devastating fungal pathogens and determined its subcellular localization. We demonstrated that knock‐down of TaMKP1 by CRISPR/Cas9 in wheat resulted in enhanced resistance to rust caused by Puccinia striiformis f. sp. tritici (Pst) and powdery mildew caused by Blumeria graminis f. sp. tritici (Bgt), indicating that TaMKP1 negatively regulates disease resistance in wheat. Unexpectedly, while Tamkp1 mutant plants showed increased resistance to the two tested fungal pathogens they also had higher yield compared with wild‐type control plants without infection. Our results suggested that TaMKP1 interacts directly with dephosphorylated and activated TaMPK3/4/6, and TaMPK4 interacts directly with TaPAL. Taken together, we demonstrated TaMKP1 exert negative modulating roles in the activation of TaMPK3/4/6, which are required for MAPK‐mediated defence signalling. This facilitates our understanding of the important roles of MAP kinase phosphatases and MAPK cascades in plant immunity and production, and provides germplasm resources for breeding for high resistance and high yield.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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