The TaWAK2-TaNAL1-TaDST pathway regulates leaf width via cytokinin signaling in wheat

Author:

Du Dejie1ORCID,Li Zhaoju1ORCID,Yuan Jun1ORCID,He Fei1,Li Xiongtao1ORCID,Wang Naijiao1,Li Renhan1,Ke Wensheng1,Zhang Dongxue1,Chen Zhaoyan1,Jiang Zihao1,Liu Yunjie1,Chai Lingling1,Liu Jie1,Hu Zhaorong1ORCID,Guo Weilong1ORCID,Peng Huiru1,Yao Yingyin1,Sun Qixin1,Ni Zhongfu1ORCID,Xin Mingming1ORCID

Affiliation:

1. Frontiers Science Center for Molecular Design Breeding, Key Laboratory of Crop Heterosis and Utilization (MOE), Key Laboratory of Crop Genetic Improvement, China Agricultural University, Beijing 100193, China.

Abstract

Leaves play a crucial role in photosynthesis and respiration, ultimately affecting the final grain yield of crops, including wheat ( Triticum aestivum L.); however, the molecular mechanisms underlying wheat leaf development remain largely unknown. Here, we isolated a narrow-leaf gene, TaWAK2-A , through a map-based cloning strategy. TaWAK2-A encodes a wall-associated kinase (WAK), for which a single Ala-to-Val amino acid substitution reduces the protein stability, leading to a narrow-leaf phenotype in wheat. Further investigation suggests that TaWAK2 directly interacts with and phosphorylates TaNAL1, a trypsin-like serine/cysteine protease. The phosphorylated TaNAL1 is then involved in the degradation of the zinc finger transcription factor TaDST, which acts as a repressor of leaf expansion by activating the expression of the cytokinin oxidase gene TaCKX9 and triggering in vivo cytokinin degradation. Therefore, our findings elucidate a signaling cascade involving TaWAK2-TaNAL1-TaDST that sheds light on the regulation of wheat leaf development.

Publisher

American Association for the Advancement of Science (AAAS)

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