Maize miR167-ARF3/30-polyamine oxidase 1 module-regulated H2O2 production confers resistance to maize chlorotic mottle virus

Author:

Liu Xuedong1,Liu Sijia1ORCID,Chen Xi1,Prasanna Boddupalli M2ORCID,Ni Zhongfu3ORCID,Li Xiangdong4ORCID,He Yueqiu5ORCID,Fan Zaifeng1ORCID,Zhou Tao1ORCID

Affiliation:

1. State Key Laboratory for Agro-Biotechnology and Department of Plant Pathology, China Agricultural University , Beijing 100193, China

2. International Maize and Wheat Improvement Center (CIMMYT), ICRAF Campus , Gigiri, Nairobi, Kenya

3. College of Agronomy, China Agricultural University , Beijing 100193, China

4. Department of Plant Pathology, College of Plant Protection, Shandong Agricultural University , Taian 271018, China

5. College of Agronomy, Yunnan Agricultural University , Kunming 650201, China

Abstract

Abstract Maize chlorotic mottle virus (MCMV) is the key pathogen causing maize lethal necrosis (MLN). Due to the sharply increased incidence of MLN in many countries, there is an urgent need to identify resistant lines and uncover the underlying resistance mechanism. Here, we showed that the abundance of maize (Zea mays) microR167 (Zma-miR167) positively modulates the degree of resistance to MCMV. Zma-miR167 directly targets Auxin Response Factor3 (ZmARF3) and ZmARF30, both of which negatively regulate resistance to MCMV. RNA-sequencing coupled with gene expression assays revealed that both ZmARF3 and ZmARF30 directly bind the promoter of Polyamine Oxidase 1 (ZmPAO1) and activate its expression. Knockdown or inhibition of enzymatic activity of ZmPAO1 suppressed MCMV infection. Nevertheless, MCMV-encoded p31 protein directly targets ZmPAO1 and enhances the enzyme activity to counteract Zma-miR167-mediated defense to some degree. We uncovered a role of the Zma-miR167-ZmARF3/30 module for restricting MCMV infection by regulating ZmPAO1 expression, while MCMV employs p31 to counteract this defense.

Funder

National Natural Science Foundation of China

China Agriculture Research System of MOF and MARA of China

State Key Laboratory of North China Crop Improvement and Regulation

Shandong Modern Agricultural Technology & Industry System

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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