ZmSIZ1a and ZmSIZ1b play an indispensable role in resistance against Fusarium ear rot in maize

Author:

Liao Xinyang12ORCID,Sun Juan1,Li Quanquan3,Ding Wenyan1,Zhao Binbin4,Wang Baobao456,Zhou Shaoqun7ORCID,Wang Haiyang158ORCID

Affiliation:

1. State Key Laboratory for Conservation and Utilization of Subtropical Agro‐Bioresources, College of Life Sciences South China Agricultural University Guangzhou China

2. College of Agronomy Sichuan Agricultural University Chengdu China

3. State Key Laboratory of Crop Biology, College of Agronomy Shandong Agricultural University Tai'an China

4. Biotechnology Research Institute Chinese Academy of Agricultural Sciences Beijing China

5. Hainan Yazhou Bay Seed Lab Sanya China

6. National Nanfan Research Institute (Sanya) Chinese Academy of Agricultural Sciences Sanya China

7. Shenzhen Branch, Guangdong Laboratory of Lingnan Modern Agriculture, Genome Analysis Laboratory of the Ministry of Agriculture and Rural Affairs Agricultural Genomics Institute at Shenzhen, Chinese Academy of Agricultural Sciences Shenzhen China

8. Guangdong Laboratory for Lingnan Modern Agriculture Guangzhou China

Abstract

AbstractFusarium ear rot (FER) is a destructive fungal disease of maize caused by Fusarium verticillioides. FER resistance is a typical complex quantitative trait controlled by micro‐effect genes, leading to difficulty in identifying the host resistance genes. SIZ1 encodes a SUMO E3 ligase regulating a wide range of plant developmental processes and stress responses. However, the function of ZmSIZ1 remains poorly understood. In this study, we demonstrate that ZmSIZ1a and ZmSIZ1b possess SUMO E3 ligase activity, and that the Zmsiz1a/1b double mutant, but not the Zmsiz1a or Zmsiz1b single mutants, exhibits severely impaired resistance to FER. Transcriptome analysis showed that differentially expressed genes were significantly enriched in plant disease resistance‐related pathways, especially in plant–pathogen interaction, MAPK signalling, and plant hormone signal transduction. Thirty‐five candidate genes were identified in these pathways. Furthermore, the integration of the transcriptome and metabolome data revealed that the flavonoid biosynthesis pathway was induced by F. verticillioides infection, and that accumulation of flavone and flavonol was significantly reduced in the Zmsiz1a/1b double mutant. Collectively, our findings demonstrate that ZmSIZ1a and ZmSIZ1b play a redundant, but indispensable role against FER, and provide potential new gene resources for molecular breeding of FER‐resistant maize cultivars.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Plant Science,Soil Science,Agronomy and Crop Science,Molecular Biology

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