Detoxifying bacterial genes for deoxynivalenol epimerization confer durable resistance to Fusarium head blight in wheat

Author:

He Wei‐Jie1,Yang Peng12,Huang Tao3,Liu Yu‐Fan1,Zhang Yu‐Wei1,Zhang Wen‐Min1,Zhang Tian‐Tian1,Zheng Meng‐Ru1,Ma Ling1,Zhao Chang‐Xing1,Li He‐Ping3,Liao Yu‐Cai1,Wu Ai‐Bo4,Zhang Jing‐Bo1ORCID

Affiliation:

1. College of Plant Science and Technology Huazhong Agricultural University Wuhan China

2. Jiangsu Ruihua Agricultural Science and Technology Co., Ltd. Suqian China

3. College of Life Science and Technology Huazhong Agricultural University Wuhan China

4. SIBS‐UGENT‐SJTU Joint Laboratory of Mycotoxin Research, CAS Key Laboratory of Nutrition, Metabolism and Food Safety, Shanghai Institute of Nutrition and Health University of Chinese Academy of Sciences, Chinese Academy of Sciences Shanghai China

Abstract

SummaryFusarium head blight (FHB) and the presence of mycotoxin deoxynivalenol (DON) pose serious threats to wheat production and food safety worldwide. DON, as a virulence factor, is crucial for the spread of FHB pathogens on plants. However, germplasm resources that are naturally resistant to DON and DON‐producing FHB pathogens are inadequate in plants. Here, detoxifying bacteria genes responsible for DON epimerization were used to enhance the resistance of wheat to mycotoxin DON and FHB pathogens. We characterized the complete pathway and molecular basis leading to the thorough detoxification of DON via epimerization through two sequential reactions in the detoxifying bacterium Devosia sp. D6‐9. Epimerization efficiently eliminates the phytotoxicity of DON and neutralizes the effects of DON as a virulence factor. Notably, co‐expressing of the genes encoding quinoprotein dehydrogenase (QDDH) for DON oxidation in the first reaction step, and aldo‐keto reductase AKR13B2 for 3‐keto‐DON reduction in the second reaction step significantly reduced the accumulation of DON as virulence factor in wheat after the infection of pathogenic Fusarium, and accordingly conferred increased disease resistance to FHB by restricting the spread of pathogenic Fusarium in the transgenic plants. Stable and improved resistance was observed in greenhouse and field conditions over multiple generations. This successful approach presents a promising avenue for enhancing FHB resistance in crops and reducing mycotoxin contents in grains through detoxification of the virulence factor DON by exogenous resistance genes from microbes.

Funder

National Key Research and Development Program of China

China Postdoctoral Science Foundation

National Natural Science Foundation of China

National Transgenic Key Project of the Ministry of Agriculture of China

Publisher

Wiley

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